references - shodhgangashodhganga.inflibnet.ac.in/bitstream/10603/10212/20/20_references.pdf ·...

24
References 386 REFERENCES 1. Ahmaniemi, S., Rajamaki, E., Vuoristo, P. and Mantyla, T., (2000), “Effect of aluminum phosphate sealing treatment on properties of thick thermal barrier coatings”, in: C.C. Berndt (Ed.), Proceedings of 1st ITSC’2000, ASM International, Materials Park, OH, USA, pp. 1081-1085. 2. Ahmaniemi, S., Tuominen, J., Vuoristo, P. and Mantyla, T., (2002A), “Sealing Procedures for Thick Thermal Barrier Coatings,” J. Therm. Spray Technol., Vol. 11, No. 3, pp. 320-332. 3. Ahmaniemi, S., Vuoristo, P. and Mantyla, T., (2002B), “Improved sealing treatments for thick thermal barrier coatings,” Surf. Coat. Technol., Vol. 151-152, pp. 412-417. 4. ASM Specialty Handbook, (1997), “Heat Resistant Materials,” Edited by J.R. Davis, ASM Publication, Metals Park OH, USA. 5. Bala, N., Singh, H. and Prakash, S., (2007), “An Overview of Characterisations and High Temperature Behaviour of Thermal Spray NiCr Coatings,” Int. J. Mater. Sci., Vol. 2, No. 3, pp. 201-218. 6. Bala, N., Singh, H., and Prakash, S., (2009A), “High Temperature Corrosion Behavior of Cold Spray Ni-20Cr Coating on Boiler Steel in Molten Salt Environment at 900 ºC,” J. Therm. Spray Technol., Vol. 19, pp. 110-118. 7. Bala, N., Singh, H. and Prakash, S., (2009B), “High Temperature Oxidation Studies of Cold Sprayed Ni-20Cr and Ni-50Cr Coatings on SAE 213-T22 Boiler Steel,” Appl. Surf. Sci., Vol. 255, No. 15, pp. 6862-6869. 8. Bala, N., Singh, H. and Prakash, S., (2009C), “Accelerated Hot Corrosion Studies of Cold Spray Ni-50Cr Coating on Boiler Steels,” Mater. Design, Vol. 31, pp. 244-253. 9. Bala, N., (2010), “Investigations on the hot corrosion behaviour of cold spray and HVOF spray coatings on T22 and SA 516 steels,” Ph.D. Thesis, Mechanical Engineering, Punjab Technical University, Jalandhar (Punjab), India.

Upload: others

Post on 08-May-2020

13 views

Category:

Documents


0 download

TRANSCRIPT

References

386

REFERENCES

1. Ahmaniemi, S., Rajamaki, E., Vuoristo, P. and Mantyla, T., (2000), “Effect of

aluminum phosphate sealing treatment on properties of thick thermal barrier

coatings”, in: C.C. Berndt (Ed.), Proceedings of 1st ITSC’2000, ASM

International, Materials Park, OH, USA, pp. 1081-1085.

2. Ahmaniemi, S., Tuominen, J., Vuoristo, P. and Mantyla, T., (2002A), “Sealing

Procedures for Thick Thermal Barrier Coatings,” J. Therm. Spray Technol., Vol.

11, No. 3, pp. 320-332.

3. Ahmaniemi, S., Vuoristo, P. and Mantyla, T., (2002B), “Improved sealing

treatments for thick thermal barrier coatings,” Surf. Coat. Technol., Vol. 151-152,

pp. 412-417.

4. ASM Specialty Handbook, (1997), “Heat Resistant Materials,” Edited by J.R.

Davis, ASM Publication, Metals Park OH, USA.

5. Bala, N., Singh, H. and Prakash, S., (2007), “An Overview of Characterisations

and High Temperature Behaviour of Thermal Spray NiCr Coatings,” Int. J. Mater.

Sci., Vol. 2, No. 3, pp. 201-218.

6. Bala, N., Singh, H., and Prakash, S., (2009A), “High Temperature Corrosion

Behavior of Cold Spray Ni-20Cr Coating on Boiler Steel in Molten Salt

Environment at 900 ºC,” J. Therm. Spray Technol., Vol. 19, pp. 110-118.

7. Bala, N., Singh, H. and Prakash, S., (2009B), “High Temperature Oxidation

Studies of Cold Sprayed Ni-20Cr and Ni-50Cr Coatings on SAE 213-T22 Boiler

Steel,” Appl. Surf. Sci., Vol. 255, No. 15, pp. 6862-6869.

8. Bala, N., Singh, H. and Prakash, S., (2009C), “Accelerated Hot Corrosion Studies

of Cold Spray Ni-50Cr Coating on Boiler Steels,” Mater. Design, Vol. 31, pp.

244-253.

9. Bala, N., (2010), “Investigations on the hot corrosion behaviour of cold spray and

HVOF spray coatings on T22 and SA 516 steels,” Ph.D. Thesis, Mechanical

Engineering, Punjab Technical University, Jalandhar (Punjab), India.

387

10. Bolelli, G., Cannillo, V., Lusvarghi, L., Montorsi, M., Mantini, F.P. and Barletta,

M., (2007), “Microstructural and tribological comparison of HVOF-sprayed and

post-treated M–Mo–Cr–Si (M = Co, Ni) alloy coatings,” Wear, Vol. 263, pp.

1397-1416.

11. Bolelli, G. and Lusvarghi, L., (2008), “Heat treatment effects on the corrosion

resistance of some HVOF-sprayed metal alloy coatings,” Surf. Coat. Technol.,

Vol. 202, pp. 4839-4847.

12. Bornstein, N.S., DeCrescente, M.A. and Roth, H.A., (1975), “Effect of

Vanadium and Sodium Compounds on the Accelerated Oxidation of Nickel Base

Alloys,” Proc. of Conf. on Gas Turbine Mater. in the Marine Environment,

MMIC-75-27, Columbus, Ohio USA, pp. 115-160.

13. Bray, M., Cockburn, A. and O'Neill, W., (2009), “The Laser-assisted Cold Spray

process and deposit characterization,” Surf. Coat. Technol., Vol. 203, pp 2851-

2857.

14. Calvarin, G., Molins, R. and Huntz, A.M., (2000), “Oxidation Mechanism of Ni-

20Cr Foils and Its Relation to the Oxide-Scale Microstructure,” Oxid. Met., Vol.

53, No. 1-2, pp. 25-48.

15. Celik, E., Demirkıran, A.S. and Avci, E., (1999), “Effect of grit blasting of

substrate on the corrosion behaviour of plasma-sprayed Al2O3 coatings,” Surf.

Coat. Technol., Vol. 116-119, pp. 1061-1064.

16. Celik, E., Ozdemir, I., Avci, E. and Tsunekawa, Y., (2005), “Corrosion behaviour

of plasma sprayed coatings,” Surf. Coat. Technol., Vol. 193, pp. 297-302.

17. Chandler, P.E. and Quigley, M.B.C., (1986), Proc. 11th Int. Thermal Spraying

Conf., Montreal, Canada, 8-12 September, 1986, p. 29.

18. Changqing, X., Xiaomin, P. and Jia, L., (2008), “Behavior of NiCrAlY coating

on the TC6 titanium alloy,” Journal of University of Science and Technoiogy

Belling, Vol. 15, No. 2, pp. 167-170.

19. Chatha, S.S., Sidhu, H.S. and Sidhu, B.S., (2011) “Role of Post Treatment in

Thermal Spray Coatings,” Int. J. of Mater. Sci. Eng., Vol. 2, No. 1-2, pp.153-162.

20. Chatha, S.S., Sidhu, H.S. and Sidhu, B.S., (2012A), “High temperature hot

corrosion behaviour of NiCr and Cr3C2-NiCr coatings on T91 boiler steel in an

References

388

aggressive environment at 750 °C,” Surf. Coat. Technol., Vol. 206, No. 19-20, pp.

3839-3850.

21. Chatha, S.S., Sidhu, H.S. and Sidhu, B.S., (2012B), “The effects of post-

treatment on the hot corrosion behaviour of the HVOF sprayed Cr3C2-NiCr

coating,” Surf. Coat. Technol., Vol. 206, No. 19-20, pp. 4212-4224.

22. Chatterjee, U.K., Bose, S.K. and Roy, S.K., (2001), ‘Environmental Degradation

of Metals,’ Pub. Marcel Dekker, 270 Madison Avenue, New York.

23. Chen, D., Jordan, E.H. and Gell, M., (2009), “Solution precursor high-velocity

oxy-fuel spray ceramic coatings,” J. European Ceramic Society, Vol. 29, pp.

3349-3353.

24. Ctibor, P., Neufuss, K., Zahalka, F. and Kolman, B., (2007), “Plasma sprayed

ceramic coatings without and with epoxy resin sealing treatment and their wear

resistance,” Wear, Vol. 262, pp. 1274-1280.

25. Cvijovic, I., Jovanovic, M.T. and Perusko, D., (2008), “Cyclic oxidation

behaviour of Ti3Al-based alloy with Ni–Cr protective layer,” Corros. Sci., Vol.

50, pp. 1919-1925.

26. Danyluk, S. and Park, J.Y., (1979), “Technical Note: Corrosion and Grain

Boundary Penetration in Type 316 Stainless Steel Exposed to a Coal Gasification

Environment,” Corrosion, Vol. 35, No. 12, pp. 575-576.

27. Das, D., Balasubramaniam, R. and Mungole, M.N., (2002A), “Hot corrosion of

Fe3Al,” J. Mater. Sci., Vol. 37, No. 6, pp.1135-1142.

28. Das, D., Balasubramaniam, R. and Mungole, M.N., (2002B), “Hot Corrosion of

Carbon-Alloyed Fe3Al-based Iron Aluminides,” Mater. Sci. Eng. A, Vol. 338, pp.

24-32.

29. Davis, J.R. and Associates, (2004), “Handbook of Thermal Spray Technology,”

ASM International, Thermal Spray Society Training Committee.

30. Dent, A.H., Horlock, A.J., McCartney, D.G. and Harris, S.J., (2001),

“Microstructural Characterisation of a Ni-Cr-B-C Based Alloy Coating Produced

by High Velocity Oxy-Fuel Thermal Spraying,” Surf. Coat. Technol., Vol. 139,

pp. 244-250.

389

31. Dragos, U., Gabriela, M., Waltraut, B. and Ioan, C., (2005), “Improvement of the

oxidation behaviour of electron beam remelted MCrAlY coatings,” Solid State

Sci., Vol. 7, pp. 459-464.

32. Evans, H. E. and Taylor, M. P., (2001), “Diffusion Cells and Chemical Failure of

MCrAlY Bond Coats in Thermal-Barrier Coating Systems,” Oxid. Met., Vol. 55,

No. 1-2, pp. 17-34.

33. Fagoaga, I., Viviente, J.L., Gavin, P., Bronte, J.M., Garcia, J. and Tagle, J.A.,

(1998), “Multilayer Coatings by Continuous Detonation System Spray

Technique,” Thin Solid Films, Vol. 317, pp. 259-265.

34. Fantassi, S., Vardelle, M., Fauchais, P. and Moreau, C., (1992), “Investigation of

the Splat Formation versus Different Particulate Temperatures and Velocities

Prior to Impact,” Proc. of 13th

Int. Thermal Spray Conf., Florida, USA, pp. 755-

760.

35. Fernandez, E., Garcıa, J.R., Cuetos, J.M. and Higuera, V., (2005), “Behaviour of

laser treated Cr, Ni coatings in the oxidative atmosphere of a steam boiler,” Surf.

Coat. Technol., Vol. 195, pp. 1-7.

36. Greving, D.J., Rybicki, E.F. and Shadley, J.R., (1994), "Through-Thickness

Residual Stress Evaluations for Several Industrial Thermal Spray Coatings Using

a Modified Layer Removal Method," J. Therm. Spray Technol., Vol. 3, No. 4, pp

379-388.

37. Guilemany, J.M., Fernandez, J., Delgado, J., Benedetti, A. V. and Climent, F.,

(2002A), “Effects of Thickness Coatings on the Electrochemical Behavior of

Thermal Spray Cr3C2-NiCr Coatings,” Surf. Coat. Technol., Vol. 153, No. 2-3,

pp. 107-113.

38. Guilemany, J.M., Miguel, J.M., Vizcaino, S., Lorenzana, C., Delgado, J. and

Sanchez, J., (2002B), “Role of heat treatments in the improvement of the sliding

wear properties of Cr3C2–NiCr coatings,” Surf. Coat. Technol., Vol. 157, pp. 207-

213.

39. Guilemany, J.M., Torrell, M. and Miguel, J.R., (2008), “Study of the HVOF Ni-

Based Coatings’Corrosion Resistance Applied on Municipal Solid-Waste

Incinerators,” J. Therm. Spray Technol., Vol. 17, No. 2, pp. 254-262.

References

390

40. Hancock, P. and Hurst R.C., (1974), “The Mechanical Properties and Breakdown

of Surface Oxide Films at Elevated Temperatures,” in ‘Advances in Corros. Sci.

and Technol.,’ Vol. 4, Eds. Fontana, M.G. and Staehle, R.W., Pub. Plenum Press,

New York.

41. He, J. and Lavernia, E.J., (2001A), “Thermal Stability of Nanostructured Cr3C2-

NiCr Coatings.” J. Therm. Spray Technol., Vol. 10, No. 2. pp. 293-300.

42. He, J. and Lavernia, E.J., (2001B), “Precipitation Phenomenon in Nanostructured

Cr3C2-NiCr Coatings,” Mater. Sci. Eng. A, Vol. 301, pp. 69-79.

43. Herman, H., Sampath, S. and Mccune, R., (2000), “Thermal Spray: Current

Status and Future Trends,” MRS Bull, Vol. 25, No. 7, pp. 17-25.

44. Hidalgo, V.H., Varela, J.B., Calle, J.M. and Menendez, A.C., (2000),

“Characterisation of NiCr Flame and Plasma Sprayed Coatings for Use in High

Temperature Regions of Boilers,” Surf. Eng., Vol. 16, No. 2, pp. 137-142.

45. Hidalgo, V.H., Varela, F.J.B., Menendez, A.C. and Martinez, S.P., (2001A), “A

Comparative Study of High-temperature Erosion Wear of Plasma-sprayed

NiCrBSiFe and WC-NiCrBSiFe Coatings under Simulated Coal-fired Boiler

Conditions,” Tribol., Vol. 34, pp. 161-169.

46. Hidalgo, V.H., Varela, J.B., Menendez, A.C. and Martinez, S.P., (2001B), “High

Temperature Erosion Wear of Flames and Plasma-sprayed Nickel-chromium

Coatings under Coal-fired Boiler Atmospheres,” Wear, Vol. 247, pp. 214-222.

47. Holt, A. and Kofstad, P., (1989), “High Temperature Corrosion of Iron in O2 +

4% SO2/SO3 at 500-800 °C," Mater. Sci. Engg. A, Vol. A120, pp. 101-04.

48. Huminik, J., (1963), “High-Temperature Inorganic Coatings,” Reinhold Pub.

Corp., New York.

49. Huttunen, S.E., Stott, F.H., Rohr, V. and Schutze, M., (2007), “Erosion–

oxidation behaviour of pack-aluminized 9% chromium steel under fluidized-bed

conditions at elevated temperature,” Corros. Sci., Vol. 49, pp. 2844-2865.

50. Iyer, S.R., Iyer, K.J.L. and Radhakrishan, V.M., (1987), “Proc. of 10th ICMC,”

Madras, India IV, p. 3665.

391

51. Jacobs, L., Hyland, M.M., Bonte, M.D., (1998), “Comparative Study of WC-

Cermet Coatings Sprayed via the HVOF and the HVAF Process,” Therm. Spray

Technol.,” Vol. 7, No.2, pp. 213-218.

52. JasimKadhim, M., (2009), “Laser sealing and thermal shock resistance of 6.5

wt% yttria Partially stabilized zirconia plasma sprayed layers,” Eng. & Tech.

Journal, Vol. 27, No. 6, pp. 1038-1045.

53. Kai, T., Xiang-lin, Z., Hua, C. and Ji-shan, Z., (2009), “Oxidation and hot

corrosion behaviors of HVAF-sprayed conventional and nanostructured NiCrC

coatings,” Trans. Nonferrous Met. Soc., China, Vol. 19, pp. 1151-1160.

54. Kamal, S. Jayaganthan, R., Prakash, S. and Kumar, S., (2008), “Hot Corrosion

Behavior of Detonation Gun Sprayed Cr3C2-NiCr Coatings on Ni and Fe-based

Superalloys in Na2SO4-60%V2O5 Environment at 900 °C,” J. Alloys Compd.,

Vol. 463, No. 1-2, pp. 358-372.

55. Kamal, S. Jayaganthan, R., Prakash, S. and Kumar, S., (2009A), “Evaluation of

cyclic hot corrosion behaviour of detonation gun sprayed Cr3C2-25%NiCr

coatings on nickel- and iron-based superalloys,” Surf. Coat. Technol., Vol. 203,

pp. 1004-1013.

56. Kamal, S., Jayaganthan, R. and Prakash, S., (2009B), “High temperature

oxidation studies of detonation-gun-sprayed Cr3C2–NiCr coating on Fe- and Ni-

based superalloys in air under cyclic condition at 900 °C,” J. Alloys Compd., Vol.

472, pp. 378-389.

57. Kamal, S., Jayaganthan, R., Prakash, S. and Kumar, S., (2010), “Mechanical and

microstructural characteristics of detonation gun sprayed NiCrAlY + 0.4 wt%

CeO2 coatings on superalloys,” Mater. Chem. Phys., Vol. 122, No. 1, pp 262-268.

58. Kaplin, C. and Brochu, M., (2011), “Effects of water vapor on high temperature

oxidation of cryomilled NiCoCrAlY coatings in air and low-SO2 environments,”

Surf. Coat. Technol., Vol. 205, pp. 4221-4227.

59. Kaur, M., Singh, H. and Prakash, S., (2011), “Surface engineering analysis of

detonation-gun sprayed Cr3C2-NiCr coating under high-temperature oxidation and

oxidation–erosion environments,” Surf. Coat. Technol., Vol. 206, pp. 530-541.

References

392

60. Kaushal, G., (2011), “Erosion-Corrosion Studies on High-Velocity Oxy-Fuel

Thermal Spray Coatings over Some Boiler Steels,” Ph.D. Thesis, Mechanical

Engineering, Punjab Technical University, Jalandhar (Punjab), India.

61. Kawahara, Y., (2007), “Application of High Temperature Corrosion-Resistant

Materials and Coatings under Severe Corrosive Environment in Waste-to-Energy

Boilers,” J. Therm. Spray Technol., Vol. 16, No. 2, pp. 202-213.

62. Kemdehoundja, M., Dinhut, J.F., Grosseau-Poussard, J.L. and Jeannin, M.,

(2006), “High temperature oxidation of Ni70Cr30 alloy: Determination of

oxidation kinetics and stress evolution in chromia layers by Raman

spectroscopy,” Mater. Sci. Eng. A, Vol. 435-436, pp. 666-671.

63. Khanna, A.S., Kumari, S., Kanungo, S. and Gasser, A., (2009), “Hard Coatings

Based on Thermal Spray and Laser Cladding,” Int. J. Refract. Met. Hard Mater.,

Vol. 27, pp. 485-491.

64. Khor, K.A., and Leh, N.L., (1993), Proc. ‘NTSC.,’ pp.613.

65. Kima, H.-J., Lee, C.-H. and Kweon, Y.-G., (2001), “The effects of sealing on the

mechanical properties of the plasma-sprayed alumina-titania coating,” Surf. Coat.

Technol., Vol. 139, pp. 75-80.

66. Koch, G.H., Brongers, M.P.H., Thompson, N.G., Virmani, Y.P. and Payer, J.H.,

(2002), “Historic Congressional Study: Corrosion Costs and Preventive Strategies

in the United States,” Supplement to Mater. Perfor., July, pp. 1-11.

67. Koiprasert, H. and Niranatlumpong, P., (2007), “Sealing of thermally-sprayed

stainless steel coatings against corrosion using nickel electroplating technique,”

Songklanakarin J. Sci. Technol., Vol. 29, No. 4, pp. 1029-1038.

68. Kong, G., Zhang, D., Brown, P.D., McCartney, D.G. and Harris, S.J., (2003),

“Microstructural Characterisation of High Velocity Oxy-Fuel Thermally Sprayed

Stellite-6,” Mater. Sci. Technol., Vol. 19, pp. 1003-1011.

69. Kumar, R., Tewari, V.K. and Prakash, S., (2007), “Studies on Hot Corrosion of

the 2.25Cr-1Mo Boiler Tube Steel and its Weldments in the Molten Salt Na2SO4-

60 pct V2O5 Environment,” Metall. Mater. Trans. A, Vol. 38A, pp. 54-57.

70. Lai, G.Y., (1990), “High Temperature Corrosion of Engineering Alloys,” ASM

International Book.

393

71. Laverde, D., Gomez-Acebo, T. and Castro, F., (2004), “Continuous and cyclic

oxidation of T91 ferritic steel under steam,” Vol. 46, No. 3, pp. 613-631.

72. Lawrencea, J. and Li, L., (2002), “Surface treatment of an Al2O3-based refractory

with CO2 and high power diode lasers for improved mechanical and chemical

resistance characteristics,” Surf. Coat. Technol., Vol. 162, pp. 93-100.

73. Lawrencea, J. and Lib, L., (2003), “Augmentation of the mechanical and

chemical resistance characteristics of an Al2O3-based refractory by means of high

power diode laser surface treatment,” J. Mater. Process. Technol., Vol. 142, pp.

461-465.

74. Li, C.L., Zhao, H.X., Matsumura, M., Takahashi, T., Asahara, M. and

Yamaguchi, H., (2000), “The effect of NiCr intermediate layer on corrosion

behavior of Cr2O3 ceramic coated materials,” Surf. Coat. Technol., Vol. 124, pp.

53-60.

75. Liang, J., Gao, W., Li, Z. and He, Y., (2004), “Hot corrosion resistance of

electrospark-deposited Al and Ni Cr coatings containing dispersed Y2O3

particles,” Materials Letters, Vol. 58, pp. 3280- 3284.

76. Lih, W.-C., Yang, S.H., Su, C.Y., Huang, S.C., Hsu, I.C. and Leu, M.S., (2000),

“Effects of Process Parameters on Molten Particle Speed and Surface

Temperature and the Properties of HVOF CrC/NiCr Coatings,” Surf. Coat.

Technol., Vol. 133-134, pp. 54-60.

77. Liscano, S., Gil, L. and Staia, M.H., (2004), “Effect of sealing treatment on the

corrosion resistance of thermal-sprayed ceramic coatings,” Surf. Coat. Technol.,

Vol. 188-189, pp. 135-139.

78. Liu, S.G., Wu, J.M., Zhang, S.C., Rong, S.J. and Li, Z.Z., (2007), “High

temperature erosion properties of arc-sprayed coatings using various cored wires

containing Ti–Al intermetallics,” Wear, Vol. 262, pp. 555-561.

79. Longa-Nava, Y., Zhang, Y.S., Takemoto, M. and Rapp, R.A., (1996), “Hot

Corrosion of Nickel-Chromium and Nickel-Chromium-Aluminum Thermal-Spray

Coatings by Sodium Sulfate-Sodium Metavanadate Salt,” Corros., Vol. 52, No. 9.

pp. 680-689.

References

394

80. Lugschider, E., Herbst, C. and Zhao, L., (1998), “Parameter Studies on High

Velocity Oxy-Fuel Spraying of MCrAIY Coatings,” Surf. Coat. Technol., Vol.

108-109, pp. 16-23.

81. Mahesh, R.A., Jayaganthan, R. and Prakash S., (2008A), “Evaluation of hot

corrosion behaviour of HVOF sprayed NiCrAl coating on superalloys at 900 °C,”

Mater. Chem. Phys., Vol. 111, pp. 524-533.

82. Mahesh, R.A., Jayaganthan, R. and Prakash, S., (2008B), “A study on hot

corrosion behaviour of Ni–5Al coatings on Ni- and Fe-based superalloys in an

aggressive environment at 900 °C,” J. Alloys Compd., Vol. 460, pp. 220-231.

83. Mahesh, R.A., Jayaganthan, R. and Prakash, S., (2009A), “Microstructural

characterization and hardness evaluation of HVOF sprayed Ni–5Al coatings on

Ni- and Fe-based superalloys,” J. Mater. Process. Technol., Vol. 209, pp. 3501-

3510.

84. Mahesh, R.A., Jayaganthan, R., Prakash, S., (2009B), “Microstructural

characteristics and mechanical properties of HVOF sprayed NiCrAl coating on

superalloys,” J. Alloys Compd., Vol. 468, pp. 392-405.

85. Mann, B.S., Arya, V. and Pant, B.K., (2010), “Enhanced Erosion Protection of

TWAS Coated Ti6Al4V Alloy Using Boride Bond Coat and Subsequent Laser

Treatment,” J. Mater. Engg. Perform., Vol. 20, No. 6, pp. 932-940.

86. Marvin, J.C., Jeffrey, F.H., Dan, N., (2005), “Fabrication, Construction, and

Operation Problems for Grade 91 Fossil Power Components,” J. Pres. Ves. Tech.,

Vol. 127, pp. 197-203.

87. Matthews, S., Hyland, M. and James, B., (2003), “Microhardness variation in

relation to carbide development in heat treated Cr3C2-NiCr thermal spray

coatings,” Acta Materialia, Vol. 51, pp. 4267-4277.

88. Matthews, S.J., (2004A), “Erosion-Corrosion of Cr3C2-NiCr High Velocity

Thermal Spray Coatings,” Ph.D. Thesis, The University of Auckland.

89. Matthews, S., Hyland, M. and James, B., (2004B), Long-Term Carbide

Development in High-Velocity Oxygen Fuel/High-Velocity Air Fuel Cr3C2-NiCr

Coatings Heat Treated at 900 oC,” J. Thermal Spray Technol., Vol. 13, No. 4, pp.

526-536.

395

90. Matthews, S.J., James, B.J. and Hyland, M.M., (2007), “Microstructural

influence on erosion behaviour of thermal spray coatings,” Mater. Charact., Vol.

58, pp. 59-64.

91. Matthews, S., James, B. and Hyland, M., (2009), “High temperature erosion of

Cr3C2-NiCr thermal spray coatings—The role of phase microstructure,” Surf.

Coat. Technol., Vol. 203, No. 9, pp. 1144-1153.

92. Matthews, S., James, B. and Hyland, M., (2010), “The Effect of Heat Treatment

on the Oxidation Mechanism of Blended Powder Cr3C2-NiCr Coatings,” J.

Therm. Spray Technol., Vol. 19, No. 1-2, pp. 119-127.

93. Metals Handbook, (1961), “Properties and Selection of Metals, 8th Edition,”

Vol. 1, ASM Publication, Metals Park Ohio.

94. Metals Handbook, (1975), “Failure analysis and Prevention,” Vol. 10, ASM

Publication, Metals Park OH, USA.

95. Miranda, J.C. and Ramalho, A., (2001), “Abrasion resistance of thermal sprayed

composite coatings with a nickel alloy matrix and a WC hard phase. Effect of

deposition technique and re-melting,” Tribol. Lett., Vol. 11, No. 1, pp. 37-48.

96. Mishra, S.B., Chandra, K., Prakash, S. and Venkataraman, B., (2005),

“Characterisation and erosion behaviour of a plasma sprayed Ni3Al coating on a

Fe-based superalloy,” Materials Letters, Vol. 59, pp. 3694-3698.

97. Moreau, C., Cielo, P. and Lamontagne, M., (1992), “Flattening and Solidification

of Thermal Sprayed Particles,” Proc. of 13th

Int. Therm. Spray Conf., Florida,

USA, pp. 761-766.

98. Morks, M.F., Berndt, C.C., Durandet, Y., Brandt, M. and Wang, J., (2010),

“Microscopic observation of laser yglazed yttria-stabilized zirconia coatings,”

Appl. Surf. Sci., Vol. 256, pp. 6213-6218.

99. Na, T., Xiaotian, J., Liling, G. and Zhengxin, L., (2000), “Effect of Post oxidation

on the Properties of Plasma Sprayed Ceramic Coatings,” Transactions of Metal

Heat Treatment, DOI cnki:ISSN:0254-587X.0.2000-04-004.

100. Nagarajan, R., Ambedkar, B., Gowrisankar, S. and Somasundaram, S., (2009),

“Development of predictive model for fly-ash erosion phenomena in coal-burning

boilers,” Wear, Vol. 267, pp. 122-128.

References

396

101. Nickel, H., Quadakkers, W.J. and Singheiser, L., (2002), “Analysis of Corrosion

Layers on Protective Coatings and High Temperature Materials in Simulated

Service Environments of Modern Power Plants Using SNMS, SIMS, SEM, TEM,

RBS and X-ray Diffraction Studies,” Anal. Bioanal. Chem., Vol. 374, pp. 581-

587.

102. Nicoll, A.R. and Wahl, G., (1983), “The Effect of Alloying Additions on M-Cr-

Al-Y Systems-An Experimental Study,” Thin Solid Films, Vol. 95, pp. 21-34.

103. Niranatlumpong, P., Ponton, C. B. and Evans, H. E., (2000), “The Failure of

Protective Oxides on Plasma-Sprayed NiCrAlY Overlay Coatings,” Oxid. Met.,

Vol. 53, No. 3-4, pp. 241-258.

104. Oksa, M., Turunen, E. and Varis, T., (2004), “Sealing of thermal spray coatings

for boiler applications”, Proc. International thermal spray conference, May 2004,

Osaka, Japan.

105. Otero, E., Merino, M.C., Pardo, A., Biezma, M.V. and Buitrago, G., (1987),

“Study on Corrosion Products of IN657 Alloy in Molten Salts,” Proc. of 10th

ICMC, Madras, India, Vol. IV, pp. 3583-3591.

106. Pawlowski, L., (1995), “The Science and Engineering of Thermal Spray

Coatings,” Wiley, NewYork.

107. Pettit, F.S. and Meier, G.H., (1984), “Oxidation and Hot Corrosion of

Superalloys,” Superalloys (1984), M. Gell, C. S. Kartovich, R. H. Bricknel, W.

B. Kent, J. F. Radovich (Eds.),The Met. Soc. of AIME, Warrendale, Pensylvania,

pp. 651-687.

108. Pettit, F.S. and Giggins, C.S., (1987), “Hot Corrosion, Ch. 12,” in ‘Superalloys

II,’ Eds. Sims, C.T., Stollof, N.S. and Hagel, W.C., Pub. Wiley Pub., N. Y.

109. Pokhmurska, H., Wielage, B., Lampke, T., Grund, T., Mykhajlo and Chervinska,

N., (2008), “Post-treatment of thermal spray coatings on magnesium,” Surf. Coat.

Technol., Vol. 202, pp. 4515-4524.

110. Portinha, A., Teixeira, V., Carneiro, J., Martins, J., Costa, M.F., Vassen, R. and

Stoever, D., (2005), “Characterization of thermal barrier coatings with a gradient

in porosity,” Surf. Coat. Technol., Vol. 195, No. 2-3, pp. 245-251.

397

111. Poza, P. and Grant, P.S., (2006), “Microstructure evolution of vacuum plasma

sprayed CoNiCrAlY coatings after heat treatment and isothermal oxidation,” Surf.

Coat. Technol., Vol. 201, pp. 2887-2896.

112. Qing, T., Zhi, S., Chun-long, Y. and Yun-qi, A., (2009), “Impact mechanism of

nano-sized TiO2 and SiO2 on corrosion resistance of electric arc spraying sealing

coat,” Procedia Earth and Planetary Science, Vol. 1, pp. 851-856.

113. Rajahram, S.S., Harvey, T.J. and Wood, R.J.K., (2009), “Erosion–corrosion

resistance of engineering materials in various test conditions,” Wear, Vol. 267,

pp. 244-254.

114. Rajahram, S.S., Harvey, T.J. and Wood, R.J.K., (2011), “Electrochemical

investigation of erosion–corrosion using a slurry pot erosion tester,” Tribol. Int.,

Vol. 44, pp. 232-240.

115. Rapp, R.A. and Zhang, Y.S., (1994), “Hot Corrosion of Materials: Fundamental

Studies,” JOM, Vol. 46, No. 12, pp. 47-55.

116. Ren, X., Wang, F. and Wang, X., (2005), “High-temperature oxidation and hot

corrosion behaviors of the NiCr–CrAl coating on a nickel-based superalloy,” Surf.

Coat. Technol., Vol. 198, pp. 425-431.

117. Rico, A., Gomez-Garcia, J., Munez, C.J., Poza, P. and Utrilla, V., (2009),

“Mechanical properties of thermal barrier coatings after isothermal oxidation.

Depth sensing indentation analysis,” Surf. Coat. Technol., Vol. 203, pp. 2307-

2314.

118. Roy, M., Pauschitz, A., Polak, R. and Franek, F., (2006), “Comparative

evaluation of ambient temperature friction behaviour of thermal sprayed Cr3C2–

25(Ni20Cr) coatings with conventional and nano-crystalline grains,” Tribol. Int.,

Vol. 39, pp. 29-38.

119. Ruhi, G., Modi, O.P., Sinha A.S.K. and Singh I.B., (2008), “Effect of sintering

temperatures on corrosion and wear properties of sol–gel alumina coatings on

surface pre-treated mild steel,” Corros. Sci., Vol. 50, pp. 639-649.

120. Saaedi, J., Coyle, T.W., Mirdamadi, S., Arabi, H. and Mostaghimi J., (2008),

“Phase formation in a Ni-050Cr HVOF coating,” Surf. Coat. Technol., Vol. 202,

pp. 5804-5811.

References

398

121. Saarivirta, E.H., Kalidakis, S., Stott, F.H., Perezc, F.J. and Lepisto, T., (2009),

“High-temperature erosion–oxidation of uncoated and FB-CVD aluminized and

aluminized–siliconized 9Cr–1Mo steel under fluidized-bed conditions,” Wear,

Vol. 267, pp. 2223-2234.

122. Saarivirta, E.H., Kalidakis, S., Stott, F.H., Rohr, V. and Schutze, M., (2010),

“Erosion-oxidation of uncoated, aluminized and chromized-aluminized 9Cr–1Mo

steels under fluidized-bed conditions at 550-700 °C,” Tribol. Int., Vol. 43, pp.

161-170.

123. Sachs, K., (1958), “Accelerated High Temperature Oxidation Due to Vanadium

Pentoxide,” Metallurgia, Apr., pp. 167-173.

124. Sadique, S.E., Mollah, A.H., Islam, M.S., Ali, M.M., Megat, M.H.H. and Basri,

S., (2000), “High-Temperature Oxidation Behavior of Iron-Chromium-Aluminum

Alloys,” Oxid. Met., Vol. 54, No. 5-6, pp. 385-400.

125. Saeidi, S., Voisey, K.T. and McCartney, D.G., (2009), “The Effect of Heat

Treatment on the Oxidation Behavior of HVOF and VPS CoNiCrAlY Coatings,”

J. Therm. Spray Technol., Vol. 18, No. 2, pp. 209-216.

126. Sahoo, P. and R. Raghuraman., (1993A), “Chromium Carbide Reinforced

Composite Coatings for High Temeprature Hard-Coat Applications. in Thermal

Spray: Research, Design, and Applications,” Anaheim, California: ASM

International, Materials Park, OH-USA.

127. Sahoo, P. and R. Raghuraman, (1993B), “High Temperature Chromium Carbide

Reinforced Metal Matrix Composite Coatings for Turbomachinery Applications,

in TS93: Thermal Spraying Conference,” Deutscher Verlag fur Schweisstechnik

DVS-Verlag GmbH. pp. 296-300.

128. Sahraoui, T., Fenineche, N.E., Montavon, G. and Coddet, C. (2003), “Structure

and Wear Behaviour of HVOF Sprayed Cr3C2-NiCr and WC-Co Coatings,”

Mater. Design, Vol. 24, pp. 309-313.

129. Saunders, S.R.J. and Nicholls, J.R., (1984), “Hot Salt Corrosion Test Procedures

and Coating Evaluation,” Thin Sold Films, Vol. 119, pp. 247-269.

399

130. Schutze, M., Malessa, M., Rohr, V. and Weber, T., (2006), “Development of

Coatings for Protection in Specific High Temperature Environments,” Surf. Coat.

Technol., Vol. 201, pp. 3872-3879.

131. Seiersten, M. and Kofstad, P., (1987), “The Effect of SO3 on Vanadate-Induced

Hot Corrosion,” High Temp. Technol., Vol. 5, No. 3, pp. 115-122.

132. Seong, B.G., Hwang, S.Y. and Kimb, K.Y., (2000), “High-temperature corrosion

of recuperators used in steel Mills,” Surf. Coat. Technol., Vol. 126, pp. 256-265.

133. Shi, L., (1993), “Accelerated Oxidation of Iron Induced by Na2SO4 Deposits in

Oxygen at 750 °C- A New Type Low-Temperature Hot Corrosion,” Oxid. Met.,

Vol. 40, No. 1-2, pp. 197-211.

134. Shibli, A. and Starr, F., (2007), “Some aspects of plant and research experience in

the use of new high strength martensitic steel P91,” Int. J. Pres. Ves. Pip., Vol. 84,

pp. 114-122.

135. Shirvani, K., Saremi, M., Nishikata, A. and Tsuru, T., (2003), “Electrochemical

study on hot corrosion of Si-modified aluminide coated In-738LC in Na2SO4-

20wt.% NaCl melt at 750 °C,” Corros. Sci., Vol. 45, pp. 1011-1021.

136. Shrestha, S., Neville, A. and Hodgkiess, T., (2001), “The Effect of Post-

Treatment of a High-Velocity Oxy-Fuel Ni-Cr-Mo-Si-B Coating Part I:

Microstructure/Corrosion Behavior Relationships,” J. Therm. Spray Technol.,

Vol. 10, No. 3, pp. 470-479.

137. Sidhu, B.S. and Prakash, S., (2003), “Evaluation of the Corrosion Behaviour of

Plasma-Sprayed Ni3Al Coatings on Steel in Oxidation and Molten Salt

Environments at 900 °C,” Surf. Coat. Technol., Vol. 166, pp. 89-100.

138. Sidhu, B.S. and Prakash, S., (2005A), “High-Temperature Oxidation Behavior of

NiCrA1Y Bond Coats and Stellite-6 Plasma-Sprayed Coatings,” Oxid. Met., Vol.

63, Nos. 3-4, pp. 241-259.

139. Sidhu, B.S. and Prakash, S., (2006A), “Studies on the behaviour of stellite-6 as

plasma sprayed and laser remelted coatings in molten salt environment at 900 °C

under cyclic conditions,” J. Mater. Process. Technol., Vol. 172, pp. 52-63.

References

400

140. Sidhu, B.S. and Prakash, S., (2006B), “Performance of NiCrAlY, Ni–Cr, Stellite-

6 and Ni3Al Coatings in Na2SO4–60% V2O5 Environment at 900 °C under Cyclic

Conditions,” Surf. Coat. Technol., Vol. 201, No. 3-4, pp. 1643-1654.

141. Sidhu, B.S. and Prakash, S., (2006C), “Evaluation of the Behavior of Shrouded

Plasma Spray Coatings in the Platen Superheater of Coal-Fired Boilers,” Metall.

and Mater. Trans. A, Vol. 37a, pp. 19-27.

142. Sidhu, B.S. and Prakash, S., (2006D), “Evaluation of the Behavior of Shrouded

Plasma Spray Coatings in the Platen Superheater of Coal-Fired Boilers,” Metall.

Mater. Trans. A, Vol. 37A, pp. 1927-1936.

143. Sidhu, B.S. and Prakash, S., (2006E), “Nickel-Chromium Plasma Spray Coatings:

A Way to Enhance Degradation Resistance of Boiler Tube Steels in Boiler

Environment,” J. Therm. Spray Technol., Vol. 15, No. 1, pp. 131-140.

144. Sidhu, B.S. and Prakash, S., (2007A), “Analytical Studies on the Behavior of

Nickel and Cobalt-Base Shrouded Plasma Spray Coatings at Elevated

Temperature in Air,” Oxid. Met., Vol. 67, pp. 279-298.

145. Sidhu, H.S., Singh, B.S. and Prakash, S., (2006F), “The Role of HVOF Coatings

in Improving Hot Corrosion Resistance of ASTM-SA210 GrA1 Steel in the

Presence of Na2SO4–V2O5 Salt Deposits,” Surf. Coat. Technol., Vol. 200, No. 18-

19, pp. 5386-5394.

146. Sidhu, H.S., Singh, B.S. and Prakash, S., (2006G), “Mechanical and

Microstructural Properties of HVOF Sprayed WC–Co and Cr3C2–NiCr Coatings

on the Boiler Tube Steels using LPG as the Fuel Gas,” J. of Mater. Process.

Technol., Vol. 171, pp. 77–82.

147. Sidhu, H.S., Sidhu, B.S. and Prakash, S., (2007B), “Solid particle erosion of

HVOF sprayed NiCr and Stellite-6 coatings,” Surf. Coat. Technol., Vol. 202, pp.

232-238.

148. Sidhu, H.S., Sidhu, B.S. and Prakash, S., (2007C), “Hot Corrosion Behavior of

HVOF Sprayed Coatings on ASTM SA213-T11 Steel,” J. Therm. Spray Technol.,

Vol. 16, No. 3, pp. 349-354.

401

149. Sidhu, T.S., Agrawal, R.D. and Prakash, S., (2005B), “Hot corrosion of some

superalloys and role of high-velocity oxy-fuel spray coatings—a review,” Surf.

Coat. Technol., Vol. 198, pp. 441- 446.

150. Sidhu, T.S., Prakash, S. and Agrawal, R.D., (2006H), “Evaluation of hot

corrosion resistance of HVOF coatings on a Ni-based superalloy in molten salt

environment,” Mater. Sci. Eng. A, Vol. 430, pp. 64-78.

151. Sidhu, T.S., Agarwal, R.D. and Prakash, S., (2006I), “Hot Corrosion Studies of

HVOF NiCrBSi and Stellite-6 Coatings on a Ni-based Superalloy in an Actual

Industrial Environment of a Coal Fired Boiler,” Surf. Coat. Technol., Vol. 201,

pp. 1602-1612.

152. Sidhu, T.S., Agarwal, R.D. and Prakash, S., (2006J), “Studies of the metallurgical

and mechanical properties of high velocity oxy-fuel sprayed stellite-6 coatings on

Ni- and Fe-based superalloys,” Surf. Coat. Technol., Vol. 201, pp. 273-281.

153. Sidhu, T.S., Agarwal, R.D. and Prakash, S., (2006K), “Hot Corrosion

Performance of a NiCr Coated Ni-based Alloy,” Scripta Mater., Vol. 55, pp. 179-

182.

154. Sidhu, T.S., Agarwal, R.D. and Prakash, S., (2006L), “Characterisations of

HVOF sprayed NiCrBSi coatings on Ni- and Fe-based superalloys and evaluation

of cyclic oxidation behaviour of some Ni-based superalloys in molten salt

environment,” Thin Solid Films, Vol. 515, pp. 95-105.

155. Sidhu, T.S., Prakash, S. and Agrawal, R.D., (2006M), “Performance of a High

Velocity Oxy-fuel Sprayed Coatings on a Fe-Based Superalloy in Na2SO4-

60%V2O5 Environment at 900 ºC, Part I: Characterisation of the Coatings,” J.

Mater. Engg. Perform., Vol. 15, No. 1, pp. 122 -129.

156. Sidhu, T.S., Prakash, S. and Agrawal, R.D., (2006N), “Performance of a High

Velocity Oxy-fuel Sprayed Coatings on a Fe-Based Superalloy in Na2SO4-

60%V2O5 Environment at 900 ºC, Part II: Hot Corrossion Behaviour of the

Coatings,” J. Mater. Engg. Perform., Vol. 15, No. 1, pp. 130-138.

157. Sidhu, T.S., Prakash, S. and Agrawal, R.D., (2006O), “Hot Corrosion Resistance

of HVOF Sprayed Coatings on a Ni-based Superalloy in Molten Salt

Environment,” J. Therm. Spray Technol., Vol. 15, No. 3, pp. 387-399.

References

402

158. Sidhu, T.S., Prakash, S. and Agrawal, R.D., (2006P), “Characterizations and Hot

Corrosion Resistance of Cr3C2-NiCr Coating on Ni-Base Superalloys in an

Aggressive Environment,” J. Therm. Spray Technol., Vol. 15, No. 4, pp. 811-816.

159. Sidhu, T.S., Prakash, S. and Agrawal, R.D., (2006Q), “Hot Corrosion Studies of

HVOF Sprayed Cr3C2-NiCr and Ni-20Cr coatings on a Nickel based Superalloy at

900 ºC,” Surf. Coat. Technol., Vol. 201, pp. 792-800.

160. Sidhu, T.S., Prakash, S. and Agrawal, R.D., (2007D), “Study of Molten Salt

Corrosion of High Velocity Oxy-Fuel Sprayed Cermet and Nickel-based Coatings

at 900 °C,” Metall. Mater. Trans. A, Vol. 38A, pp. 77-85.

161. Sidhu, T.S., Prakash, S. and Agrawal, R.D., (2007E), “Oxidation and Hot

Corrosion Resistance of HVOF WC-NiCrFeSiB Coating on Ni- and Fe-based

Superalloys at 800 °C,” J. Therm. Spray Technol., Vol. 16, No. 5-6, pp. 844-849.

162. Singh, B., (2003), “Studies on the Role of Coatings in Improving Resistance to

Hot Corrosion and Degradation,” Ph.D. Thesis, Met. & Mat. Eng. Dept., Indian

Institute of Technology Roorkee, Roorkee, India.

163. Singh, H., Puri, D. and Prakash, S., (2005A), “Some Studies on Hot Corrosion

Performance of Plasma Sprayed Coatings on a Fe-based Superalloy,” Surf. Coat.

Technol., Vol. 192, No. 1, pp. 27-38.

164. Singh, H., Puri, D. and Prakash, S., (2005B), “Some Studies on Hot Corrosion

Performance of Plasma Sprayed Coatings on a Fe-based Superalloy,” Surf. Coat.

Technol., Vol. 192, No. 1, pp. 27-38.

165. Singh, H., Puri, D. and Prakash, S., (2005C), “Corrosion Behavior of Plasma-

Sprayed Coatings on a Ni-Base Superalloy in Na2SO4-60 Pct V2O5 Environment

at 900 °C,” Metall. Mater. Trans. A, Vol. 36A, pp. 1007-1015.

166. Singh, H., Prakash, S., Puri, D. and Phase, D.M., (2006A), “Cyclic Oxidation

Behavior of Some Plasma-Sprayed Coatings in Na2SO4-60%V2O5 Environment,”

J. Mater. Engg. Perform., Vol. 15, No. 6, pp. 729-741.

167. Singh, K., (2006B), “Advances in materials for advanced steam cycle power

plants,” BHEL Journal, Vol. 27, No. 2, pp.

168. Sobolev, V.V., Guilemany, J.M. and Nutting, J., (2004), “HVOF Spraying,”

B0655, Maney, IOM3, pp. 5.

403

169. Song, Y., Zhou, C. and Xu, H., (2008), “Corrosion behavior of thermal barrier

coatings exposed to NaCl plus water vapor at 1050 °C,” Thin Solid Films, Vol.

516, pp. 5686-5689.

170. Souza, R.C., Voorwald, H.J.C. and Cioffi, M.O.H., (2008), “Fatigue strength of

HVOF sprayed Cr3C2–25NiCr and WC-10Ni on AISI 4340 steel,” Surf. Coat.

Technol., Vol. 203, pp.191-198.

171. Sreedhar, G., Alam, M.D.M. and Raja, V.S., (2009), “Hot corrosion behaviour of

plasma sprayed YSZ/Al2O3 dispersed NiCrAlY coatings on Inconel-718

superalloy,” Surf. Coat. Technol., Vol. 204, pp. 291-299.

172. Srikanth, S., Ravikumar, B., Das, S.K., Gopalakrishna, K., Nandakumar, K. and

Vijayan, P., (2003), “Analysis of Failures in Boiler Tubes Due to Fireside

Corrosion in a Waste Heat Recovery Boiler,” Eng. Failure Anal., Vol. 10, pp. 59-

66.

173. Srivastava, S.C., Godiwalla, K.M. and Banerjee, M.K., (1997), “Fuel ash

corrosion of boiler and superheater tubes,” J. Mater. Sci., Vol. 32, pp. 835-849.

174. Staia, M.H., Valente, T., Bartuli, C., Lewis, D.B. and Constable, C.P., (2001), “Part

I: Characterization of Cr3C2-25%NiCr Reactive Plasma Sprayed Coatings Produced

at Different Pressures,” Surf. Coat. Technol., Vol. 146-147, pp. 553-562.

175. Stein, K.J., Schorr, B.S. and Marder, A.R., (1999), “Erosion of Thermal Spray

MCr-Cr3C2 Cermet Coating,” Wear, Vol. 224, pp. 153-159.

176. Stewart, S., Ahmed, R. and Itsukaichi, T., (2005), “Rolling contact fatigue of

post-treated WC–NiCrBSi thermal spray coatings,” Surf. Coat. Technol., Vol.

190, pp. 171-189.

177. Stokes, J., (2003), “Production of Coated and Free-Standing Engineering

Components using the HVOF (High Velocity Oxy-Fuel) Process”, Ph.D. Thesis,

Dublin City University, Ireland.

178. Stokes, J., (2005), “The Theory and Application of the HVOF Thermal Spray

Process,” Dublin: Dublin City University.

179. Stott, F.H., (1998), “The Role of Oxidation in the Wear of Alloys,” Tribol. Int.,

Vol. 31, Nos. 1-3, pp. 61-71.

References

404

180. Stringer, J., (1987), “High Temperature Corrosion of Superalloys,” Mater. Sci.

Technol., Vol. 3, No. 7, pp. 482-493.

181. Stroosnijder, M.F., Mevrel, R. and Bennet, M.J., (1994), “The Interaction of

Surface Engineering and High Temperature Corrosion Protection,” Mater. High

Temp., Vol. 12, No. 1, pp. 53-66.

182. Suarez, M., Bellayer, S., Traisnel, M., Gonzalez, W., Chicot, D., Lesage, J.,

Puchi-Cabrera, E.S. and Staia, M.H., (2008), “Corrosion behavior of Cr3C2–NiCr

vacuum plasma sprayed coatings,” Surf. Coat. Technol., Vol. 202, No. 18, pp.

4566-4571.

183. Sundararajan, G., Phani, P.S., Jyothirmayi, A. and Gundakaram, R.C., (2009),

“The influence of heat treatment on the micro structural, mechanical and

corrosion behaviour of cold sprayed SS 316L coatings,” J of Mater Sci., Vol. 44,

pp. 2320-2326.

184. Sundararajan, T., Kuroda, S., Itagaki, T. and Abe, F., (2003A), “Steam

Oxidation Resistance of Ni-Cr Thermal Spray Coatings on 9Cr-1Mo Steel. Part 2:

50Ni-50Cr,” ISIJ Int., Vol. 43, No.1, pp. 104-111.

185. Sundararajan, T., Kuroda, S., Itagaki, T. and Abe, F., (2003B), “Steam

Oxidation Resistance of Ni-Cr Thermal Spray Coatings on 9Cr-1Mo Steel. Part 1:

80Ni-20Cr,” ISIJ Int., Vol. 43, No. 1, pp. 95-103.

186. Sundararajan, T., Kuroda, S., Nishida, K., Itagaki, T. and Abe, F., (2004A),

“Behaviour of Mn and Si in the Spray Powders during Steam Oxidation of Ni-Cr

Thermal Spray Coatings,” ISIJ Int., Vol. 44, pp. 139-144.

187. Sundararajan, T., Kuroda, S., Itagaki, T. and Abe, F., (2004B), “Steam

Oxidation Studies on 50Ni-50Cr HVOF Coatings on 9Cr-1Mo Steel: Change in

Structure and Morphology across the Coating/Substrate Interface,” Mater. Trans.,

Vol. 45, No. 4, pp. 1299-1305.

188. Tao, K., Zhou, X., Cui, H. and Zhang, J., (2009), “Microhardness variation in

heat-treated conventional and nanostructured NiCrC coatings prepared by HVAF

spraying,” Surf. Coat. Technol., Vol. 203, pp. 1406-1414.

405

189. Tang, Z., Wang, F. and Wu, W., (2000), “Effect of Al2O3 and enamel coatings on

900 °C oxidation and hot corrosion behaviors of gamma-TiAl,” Mater. Sci. Eng.

A, Vol. 276, pp. 70-75.

190. Thermal Spraying (1997): Practice, Theory, and Application, American welding

society, INC. 550 N. W. LeJeune road, Miami, Florida-33135.

191. Tillmann, W., Vogli, E., Baumann, I., Kopp, G. and Weihs, C., (2010),

“Desirability-Based Multi-Criteria Optimization of HVOF Spray Experiments to

Manufacture Fine Structured Wear-Resistant 75Cr3C2-25(NiCr20) Coatings,” J.

Therm. Spray Technol., Vol. 19, No. 1-2, pp. 392-408.

192. Tiwari, S.N. and Prakash, S., (1996), “Hot Corrosion Behaviour of Iron-Base

Superalloy in Salt Environment at Elevated Temperatures,” Proc. of Sympos.

Metals and Materials Research, Indian Institutie of Technology Madras, Madras,

4-5th July, pp. 107-117.

193. Tobe, S., Andoh, Y., Hidaka, K., Tanaka, K., Nishimura, S., Kawaharada, K. and

Shirai, K., (1999), “High Temperature Corrosion Resistance of Newly Developed

Cr-Based Alloy Coatings,” Tagungsband Conference Proceedings, Dusseldorf,

Germany.

194. Toma, D., Brandl, W. and Koester, U., (1999), “Studies on the Transient Stage of

Oxidation of VPS and HVOF Sprayed MCrAlY Coatings,” Surf. Coat. Technol.,

Vol. 120-121, pp. 8-15.

195. Torrell, M., Dosta, S., Miguel, J.R. and Guilemany, J.M., (2010), “Optimisation

of HVOF thermal spray coatings for their implementation as MSWI superheater

protectors,” Corros. Eng. Sci. Techn., Vol. 45, pp. 84-93.

196. Triantafyllidis, D., Li, L. and Stott, F.H., (2002), “Surface treatment of alumina

based ceramics using combined laser source,” Appl. Surf. Sci., Vol. 186, pp. 140-

144.

197. Tucker, Jr., R.C., (1994), “Ch. 11: Advanced Thermal Spray Deposition

Techniques,” in ‘Handbook of Deposition Technologies for Films & Coatings,’

Eds. R.F. Bunshah, Noyes Pub. Park Ridge, New Jersey, U. S. A./William

Andrew Publishing, LLC, Norwich, New York, U.S.A, pp. 591.

References

406

198. Ul-Hamid, A., (2003), “Diverse Scaling Behavior of the Ni-20Cr Alloy,” Maters.

Chem. Phys., Vol. 80, pp. 135-142.

199. Uusitalo, M.A., Vuoristo, P.M.J., Mantyla, T.A., (2002), “High temperature

corrosion of coatings and boiler steels in reducing chlorine-containing

atmosphere,” Surf. Coat. Technol., Vol. 161, pp. 275-285.

200. Uusitalo, M.A., Vuoristo, P.M.J. and Mantyla, T.A., (2003), “High Temperature

Corrosion of Coatings and Boiler Steels in Oxidizing Chlorine-containing

Atmosphere,” Mater. Sci. Eng. A, Vol. 346, pp. 168-177.

201. Uusitalo, M.A., Vuoristo, P.M.J. and Mantyla, T.A., (2004), “High temperature

corrosion of coatings and boiler steels below chlorine-containing salt deposits,”

Corros. Sci., Vol. 46, pp. 1311-1331.

202. Vardelle A. and Kuroda S., (2007), “Coatings under Severe Conditions,” J.

Therm. Spray Technol., Vol. 16, No. 1, pp. 1-2.

203. Venugopal, K. and Agrawal, M., (2008), “Evaluation of arc sprayed coatings for

erosion protection of tubes in atmospheric fluidised bed combustion (AFBC)

boilers,” Wear, Vol. 264, pp. 139-145.

204. Verdon, C., Karimi, A. and Martin, J.L., (1998), “A Study of High Velocity Oxy-

Fuel Thermally Sprayed Tungsten Carbide Based Coatings: Part 1.

Microstructures,” Mater. Sci. Eng. A, Vol. 246, pp. 11-24.

205. Vicenzi, J., Marques, C.M., Bergmann, C.P., (2008), “Hot and cold erosive wear

of thermal sprayed NiCr-based coatings: Influence of porosity and oxidation”,

Surf. Coat. Technol., Vol. 202, pp. 3688-3697.

206. Wang, B., Gong, J., Wang, A. Y., Sun, C., Huang, R. F. and Wen, L. S., (2002A),

“Oxidation Behavior of NiCrAlY Coatings on Ni-Based Superalloy,” Surf. Coat.

Technol.,Vol. 149, No. 1, pp. 70-75.

207. Wang, B.Q. and Lee, S.W., (1997), “Elevated temperature erosion of several

thermal-sprayed coatings under the simulated erosion conditions of in-bed tubes

in a fluidized bed combustor,” Wear, Vol. 203-204, pp. 580-587.

208. Wang, B.Q. and Verstak, A., (1999), “Elevated temperature erosion of HVOF

Cr3C 2/TiC–NiCrMo cermet coating,” Wear, Vol. 233-235, pp. 342-351.

407

209. Wang, B.Q., (2002B), “Effect of post heat treatment and sealing on erosion

resistance of several thermal sprayed coatings, in: S. Zhang (Ed.), Proceedings of

ICSE 2002, Southwest Jiaotong University Press, Chengdu, China, pp. 138-143.

210. Wang, B.Q. and Shui, Z.R., (2003A), “Hot erosion behavior of carbide–metal

composite coatings,” J. Mater. Process. Technol., Vol. 143-144, pp. 87-92.

211. Wang, B.Q., (2003B), “Hot erosion behavior of two new iron-based coatings

sprayed by HVCC process,” Wear, Vol. 255, pp. 102-109.

212. Wang, D., (1988), “Corrosion Behavior of Chromized and/or Aluminized 21/4Cr-

1Mo Steel in Medium-BTU Coal Gasifier Environments,” Surf. Coat.

Technol.,Vol. 36, pp. 49-60.

213. Wang, H.-T., Li, C.-J., Yang, G-J. and Li, C.-X., (2009), “Effect of heat treatment

on the microstructure and property of cold-sprayed nanostructured FeAl/Al2O3

intermetallic composite coating,” Vacuum, Vol. 83, pp 146-152.

214. Wang, Y., Jiang, S.L., Zheng, Y.G., Ke, W., Sun, W.H. and Wang, J.Q., (2011),

“Effect of porosity sealing treatments on the corrosion resistance of high-velocity

oxy-fuel (HVOF)-sprayed Fe-based amorphous metallic coatings,” Surf. Coat.

Technol., Vol. 206, pp. 1307-1318.

215. Westergard, R. and Hogmark, S., (2004), “Sealing to improve the wear

properties of plasma sprayed alumina by electro-deposited Ni,” Wear, Vol. 256,

pp. 1153-1162.

216. Weulersee, M.K., Moulin, G., Billard, P. and Pierotti, G., (2004), “High

Temperature Corrosion of Superheater Tubes in Waste Incinerators and Coal-

Fired Plants,” Mater.Sci. Forum, Vol. 461-464, pp. 973-980.

217. Wright, I.G., (1987), “High Temperature Erosion in Coal Combustion and

Conversion Processes: A Review,” Mater. Sci. Eng., Vol. 88, pp. 261-271.

218. Wu, Y.S., Qiu, W.Q., Yu, H.Y., Zhong, X.C., Liu, Z.W., Zeng, D.C. and Li, S.Z.,

(2011A), “Cycle oxidation behavior of nanostructured Ni60–TiB2 composite

coating sprayed by HVOF technique,” Appl. Surf. Sci., Vol. 257, pp. 10224-

10232.

219. Wu, Y.S., Zeng, D.C., Liu, Z.W., Qiu, W.Q., Zhong, X.C., Yu, H.Y. and Li, S.Z.,

(2011B), “Microstructure and sliding wear behavior of nanostructured Ni60–TiB2

References

408

composite coating sprayed by HVOF technique,” Surf. Coat. Technol., Vol. 206,

pp. 1102-1108.

220. Xie, G., Lu, Y., He, Z., Hu, B., Wang, K., Mo, X., Wu, Y. and Lin, P., (2008),

“Microstructure and corrosion properties of plasma-sprayed NiCr-Cr3C2 coatings

comparison with different post treatment,” Surf. Coat. Technol., Vol. 202, pp.

2885-2890.

221. Xue-mei, O., Zhi, S., Min, S. and Duan-lian, Z., (2008), “Hot-corrosion

mechanism of Ni-Cr coatings at 650 °C under different simulated corrosion

conditions,” J. China Univ. Min. Technol., Vol. 18, pp. 0444-0448.

222. Yang, Q., Cai, F., Zhao, L.R. and Huang, X., (2008), “Improving corrosion

resistance of CrTiAlN coating by post-deposition treatments,” Surf. Coat.

Technol., Vol. 203, pp. 606-609.

223. Zeng, Z., Sakoda, N. Tajiri, T. and Kuroda, S., (2008), “Structure and corrosion

behavior of 316L stainless steel coatings formed by HVAF spraying with and

without sealing,” Surf. Coat. Technol., Vol. 203, pp. 284-290.

224. Zhao, W.M., Wang, Y., Han, T., Wu, K.Y. and Xue, J., (2004), “Electrochemical

Evaluation of Corrosion Resistance of NiCrBSi Coatings Deposited by HVOF,”

Surf. Coat. Technol., Vol. 183, pp. 118-125.

225. Zhao, W.M., Wang, Y., Dong, L.X., Wu, K.Y. and Xue, J., (2005), “Corrosion

Mechanism of NiCrBSi Coatings Deposited by HVOF,” Surf. Coat. Technol.,

Vol. 190, pp. 293-298.

226. Zhang, D., Harris, S.J. and McCartney, D.G., (2003) “Microstructure Formation

and Corrosion Behaviour in HVOF-Sprayed Inconel 625 Coatings,” Mater. Sci.

Eng. A, Vol. 344, pp. 45-56.

227. Zhang, J., Wang, Z., Lin, P., Lu, W., Zhou, Z. and Jiang, S., (2010), “Effect of

Sealing Treatment on Corrosion Resistance of Plasma-Sprayed NiCrAl/Cr2O3-8

wt.%TiO2 Coating”, J. Therm. Spray Technol., http://dx.doi.org/10.1007/s11666-

010-9528-6.

228. Zhang, K., Liu, M.M., Liu, S.L., Sun, C. and Wang, F.H., (2011). “Hot corrosion

behaviour of a cobalt-base super-alloy K40S with and without NiCrAlYSi

coating,” Corros. Sci., Vol. 53. pp. 1990-1998.

409

229. Zhang, Q., Li, C.-J., Li, C.-X., Yang, G.-J. and Lui, S.-C., (2008A), “Study of

oxidation behavior of nanostructured NiCrAlY bond coatings deposited by cold

spraying,” Surf. Coat. Technol., Vol. 202, pp. 3378-3384.

230. Zhang S.-H., Cho T.-Y., Yoon J.-H., Fang W., Song K.-O., Li M.-X., Joo Y.-K.

and Lee C.G., (2008B), “Characterization of microstructure and surface properties

of hybrid coatings of WC–CoCr prepared by laser heat treatment and high

velocity oxygen fuel spraying”, Mater. Charact., Vol. 59, pp. 1412-1418.