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Hot corrosion behavior of the spray-formed nickel-based superalloy |
Min Xia(夏敏)1, Tian-Fu Gu(谷天赋)1, Chong-Lin Jia(贾崇林)1,2, Chang-Chun Ge(葛昌纯)1 |
1. School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing 100083, China;
2. Science and Technology on Advanced High Temperature Structural Materials Laboratory, Beijing Institute of Aeronautical Materials, Beijing 100095, China |
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Abstract An investigation of low temperature hot corrosion is carried out on a spray-formed nickel-based superalloy FGH100 pre-coated with Na2SO4-NaCl at 700℃ for 100 h. Mass gain measurement, x-ray diffraction, scanning electron microscopy, and energy dispersive x-ray spectroscopy are used to study the corrosion behavior. Results reveal that corrosion behavior follows a sequence, that is, first rapidly proceeding, then gradually slowing down, and finally forming an outer layer composed of different types of oxides and an inner layer mainly comprised of sulfides. In-depth analysis reveals that the hot corrosion of FGH100 is a combined effect of oxidation-sulfidation and transfer of oxides.
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Received: 13 July 2016
Revised: 09 September 2016
Accepted manuscript online:
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PACS:
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81.20.Ev
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(Powder processing: powder metallurgy, compaction, sintering, mechanical alloying, and granulation)
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83.50.Uv
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(Material processing (extension, molding, etc.))
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62.20.-x
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(Mechanical properties of solids)
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Corresponding Authors:
Min Xia, Chang-Chun Ge
E-mail: xmdsg@ustb.edu.cn;ccge@mater.ustb.edu.cn
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Cite this article:
Min Xia(夏敏), Tian-Fu Gu(谷天赋), Chong-Lin Jia(贾崇林), Chang-Chun Ge(葛昌纯) Hot corrosion behavior of the spray-formed nickel-based superalloy 2016 Chin. Phys. B 25 128103
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[1] |
Chen G L 1988 Superalloy (Beijing:Metallurgical Industry Press)
|
[2] |
Zhang K, Liu M M, Liu S L, Sun C and Wang F H 2011 Corros. Sci. 53 1990
|
[3] |
Kai W, Lee C H, Lee T W and Wu C H 2001 Oxid. Met. 56 51
|
[4] |
Lv J X, Zheng L, Zhang M C and Dong J X 2009 Acta Metall. Sin. 45 204
|
[5] |
Deb D, Iyer S R and Radhakrishnan V M 1996 Mater. Lett. 29 19
|
[6] |
Zheng L, Zhang M C and Dong J X 2011 Mater. Design 32 1981
|
[7] |
Yang X, Li S and Qi H 2015 Int. J. Fatigue. 70 106
|
[8] |
Sahu J K, Gupta R K, Swaminathan J, Paulose N and Mannan S L 2013 Int. J. Fatigue. 51 68
|
[9] |
Pieraggi B 1987 Mater. Sci. Eng. 88 199
|
[10] |
Sahu J K, Ravi Kumar B, Das S K, Paulose N and Mannan S L 2015 Mater. Sci. Eng. A 622 131
|
[11] |
Hou J S, Zhou L Z, Yuan C, Guo J T, Wang W, Qin X Z and Liaw P K 2013 Mater. Charact. 77 47
|
[12] |
Chateau E and Rémy L 2010 Mater. Sci. Eng. A 527 1655
|
[13] |
Guo J T 2008 Mater Science and Engineering for Superalloy (Beijing:Science Press)
|
[14] |
Han F F, Chang J X, Li H, Lou L H and Zhang J 2015 J. Alloy Compd. 619 102
|
[15] |
Lortrakul P, Trice R W, Trumble K P and Dayananda M A 2014 Corros. Sci. 80 408
|
[16] |
Liu E, Zheng Z, Guan X, Tong J, Ning L and Yu Y I 2010 J. Mater. Sci. Technol. 26 895
|
[17] |
Liu G M, Yu F, Tian J H and Ma J H 2008 Mater. Sci. Eng. A 496 40
|
[18] |
Cho S, Hur J, Seo C, Yoon J and Park S 2009 J. Alloy Compd. 468 263
|
[19] |
Liu Z, Zhao X and Zhou C 2014 Corros. Sci. 92 148
|
[20] |
Fan Q X, Jiang S M, Yu H J, Gong J and Sun C 2014 Appl. Surf. Sci. 311 214
|
[21] |
Bai C, Luo Y and Koo C 2004 Surf. Coat. Tech. 183 74
|
[22] |
Zheng D, Zhu S and Wang F 2006 Surf. Coat. Tech. 200 5931
|
[23] |
Ma J, Jiang S M, Gong J and Sun C 2012 Corros. Sci. 58 251
|
[24] |
Shirvani K, Saremi M, Nishikata A and Tsuru T 2003 Corros. Sci. 45 1011
|
[25] |
Zhang Y W and Shangguan Y H 2004 Powder Metall. Ind. pp. 30-43
|
[26] |
Pollock T M and Tin S 2006 J. Propul. Power. 22 361
|
[27] |
Zhang J S, Xiong B Q and Cui H 2008 Spray forming rapid solidification technology:principles and applications (Beijing:Science Press)
|
[28] |
Huang P Y, Jin Z P and Chen Z H 2010 Basic theory and new technology of powder metallurgy (Beijing:Science Press)
|
[29] |
Lavernia E J and Grant N J 1988 Mater. Sci. Eng. A 98 381
|
[30] |
Grant P S 1995 Prog. Mater. Sci. 4 497
|
[31] |
Yang Y and Hannula S 2008 Mater. Sci. Eng. A 477 63
|
[32] |
Zhang Y, Ge C C, Sheng W P and Qiu C J 2012 Acta Phys. Sin. 61 355 (in Chinese)
|
[33] |
Guo B, Sun C S, Zhang S C and Ge C C 2013 Rare Metals. 32 347
|
[34] |
Xu Y, Shu Q S, Zhang Y and Ge C C 2012 Mater. Sci. Technol. 20 41
|
[35] |
Li T F 2003 High Temperature Oxidation and Hot Corrosion of Metals (Beijing:Chemical Industry Press)
|
[36] |
Zhu R Z, He Y D and Qi H B 1995 High Temperature Corrosion and High Temperature Corrosion Resistant Materials (Shanghai:Shanghai Scientific and Technical Publication)
|
[37] |
Li M S 2001 High Temperature Corrosion of Metals (Beijing:Metallurgical Industry Press)
|
[38] |
Rapp R A 2002 Corros. Sci. 44 209
|
[39] |
Bourhis Y and John C S 1975 Oxid. Met. 9 507
|
[40] |
Kameswari S 1986 Oxid. Met. 26 33
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