The creep behavior of the plasma sprayed NiCr and NiCrAl coating/Nickel alloy 690 substrate systems at 1033 K was investigated. Results showed that there was almost no difference in the creep lives between the NiCr and NiCrAl coated specimens at a given stress level, since the contents of Cr used in the NiCr and NiCrAl powders are almost same. The relationship between the minimum creep rate and the applied stress followed the well-known Norton's power law, εmin=Aσn, with the values of A=2.66×10-16 MPa-n•h-1 and n=6.48. The relation between the applied stress and time to rupture of the coated specimens can be estimated by using Larson-Miller equation. The θ projection method can be used to accurately characterize the creep behavior of the coated specimens.
ZHANG Xian-Cheng
. Creep behavior of plasma sprayed NiCr and NiCrAl coating-based systems[J]. Acta Metallurgica Sinica (English Letters), 2011
, 24(3)
: 183
-189
.
DOI: 10.11890/1006-7191-113-183
[1] D. Toma, W. Brandl and U. Koster, Surf Coat Technol 120/121 (1999) 8.
[2] R. Mobarra, A.H. Jafari and M. Karaminezhaad, Surf Coat Technol 201 (2006) 2202.
[3] D.B. Fowler, W. Riggs and J.C. Russ, Adv Mater Process 138 (1990) 41.
[4] S.H. Leigh and C.C. Berndt, Acta Mater 47 (1999) 1575.
[5] Z. Wang, A. Kulkarni, S. Deshpande, T. Nakamura and H.Herman, Acta Mater 51 (2003) 5319.
[6] P. Niranatlumpong, C.B. Ponton and H.E. Evans, Oxid Met 53 (2000) 241.
[7] H. Singh, D. Puri, S. Prakash and R. Maiti, Mater Sci Eng A464 (2007) 110.
[8] L. Ajdelsztajn, D. Hulbert, A. Mukherjee and J.M.Schoenung, Surf Coat Technol 201 (2007) 9462.
[9] H.E. Evans, A. Strawbridge, R.A. Carolan and C.B. Ponton, Mater Sci Eng A255 (1997) 1.
[10] M.P. Taylor, H.E. Evans, E.P. Busso and Z.Q. Qian, Acta Mater 54 (2006) 3241.
[11] Z.Y. Liu, W. Gao, K.L. Dahm and F.H. Wang, Oxid Met 50 (1998) 51.
[12] F.Z. Xuan, J.J. Chen, Z.D. Wang and S.T. Tu, Int JPress Vess Piping 86 (2009) 604.
[13] M.G. Hebsur and R.V. Miner, Thin Solid Films 147 (1987) 143.
[14] W.J. Brindley and J.D. Whittenberger, Mater Sci Eng A163 (1993) 33.
[15] J.A. Thompson, Y.C. Tsui, R.C. Reed, D.S. Rickerby and T.W. Clyne, High Temperature Surface Engineering, IOM Communications, J. Nicholls and D. Rickerby eds. (Edinburgh, UK,2000).
[16] S. Jochen and V. Otmar, Adv Eng Mater 5 (2003) 490.
[17] M.P. Taylor, H.E. Evans, C.B. Ponton and J.R. Nicholls, Surf Coat Technol 124 (2000) 13.
[18] Y. Itoh, M. Saiton and Y. Ishiwata, J Mater Sci 34 (1999) 3957.
[19] T. Narita, M. Sakata, T. Nishimoto, T. Yoshioka and S.Hayashi, Mater Corros 59 (2008) 471.
[20] F. Norton, The Creep of Steel at High Temperatures (McGraw-Hill Ltd., London, 1929).
[21] F. Garofalo, Fundamentals of Creep and Creep Rupture in Metals (MacMillan, Inc., New York, 1965).
[22] R. Evans and B. Wilshire, Creep of Metals and Alloys (Institution of Metals, London, 1985).
[23] B. Dyson and M. McLean, Microstructural Stability of Creep Resistant Alloys for High Temperature Applications (Institution of Metals, London, 1998) p.371.
[24] S.G.R. Brown, R.W. Evans and B. Wilshire, Scr Metall 20 (1986) 855.
[25] S.G.R. Brown, R.W. Evans and B. Wilshire, Int J Press Ves Piping 24 (1986) 251.
[26] INCONEL® alloy 690,http://www.specialmetals.com/products/inconelalloy690.
[27] W.G. Kim, S.N. Yin, Y.W. Kim and J.H. Chang, Eng Fract Mech 75 (2008) 4985.