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Research Article

Oxidation control in arc-sprayed SS420 coating

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Pages 581-589 | Received 20 May 2020, Accepted 16 Oct 2020, Published online: 05 Nov 2020

References

  • Djeraf S, Lakhdari R, Lahmar H, et al. Corrosion behavior of stainless steel wire-arc sprayed coatings. Centre for the Development of Advanced Technologies (CDTA), Algiers/DZ; 2014.
  • Chen YX, Liang XB, Liu Y, et al. Effect of heat treatment on microstructure and residual stress of wire arc sprayed high carbon steel coating. Surf Eng. 2010;26:407–412.
  • Li R, He DY, Zhou Z, et al. Wear and high temperature oxidation behaviour of wire arc sprayed iron based coatings. Surf Eng. 2014;30:784–790.
  • Huang J, Ma W, Xie Y, et al. Influence of cold gas spray processing conditions on the properties of 316L stainless steel coatings. Surf Eng. 2019;35:784–791.
  • Li R, He DY, Zhou Z, et al. High temperature corrosion behaviour of wire arc sprayed Fe based coatings. Surf Eng. 2014;30:573–578.
  • Chen J, Ma B, Feng S, et al. Preparation and application of 420 martensitic stainless steel wear resistant coating on magnesium alloy by cold spraying. Surf Eng. 2019;35:351–359.
  • Tuominen J, Näkki J, Pajukoski H, et al. Microstructural and abrasion wear characteristics of laser-clad tool steel coatings. Surf Eng. 2016;32:923–933.
  • Wang SH, Chen JY, Xue L. A study of the abrasive wear behaviour of laser-clad tool steel coatings. Surf Coat Technol. 2006;200:3446–3458.
  • James DH. The properties and applications of Arc sprayed coatings. Trans IMF. 1982;60(1):49–53. doi:10.1080/00202967.1982.11870604.
  • Xu B, Shining M, Wang J. Application of electric arc spraying technique to enhance corrosion resistance of steel structures on ships. Surf Eng. 1995;11(1):38–40. doi:10.1179/sur.1995.11.1.38.
  • Howes C Jr. An overview of thermal spray processes. Mater Technol. 1996;11(5):188–191. doi:10.1080/10667857.1996.11752697
  • Tailor S, Modi A, Modi SC. Synthesis, microstructural, corrosion and antimicrobial properties of Zn and Zn–Al coatings. Surf Eng. 2019;35(8):736–742.
  • Newbery AP, Grant PS. Oxidation during electric arc spray forming of steel. J Mater Process Technol. 2006;178:259–269.
  • Davis R. Handbook of thermal spray technology. Materials Park (OH): ASM International; 2004.
  • Neiser RA, Smith MF, Dykhuizen RC. Oxidation in wire HVOF sprayed steel. J Therm Spray Technol. 1998;7:537–545.
  • Gan JA, Berndt CC. Review on the oxidation of metallic thermal sprayed coatings: a case Study with reference to Rare-Earth Permanent magnetic coatings. J Therm Spray Technol. 2013;22:1069–1091.
  • Hoile S, Rayment T, Grant PS. Phase transformations and control of residual stresses in thick spray formed steel shells. Metall Mater Trans B. 2004;35:1113–1122.
  • Hartfield-Wünsch SE, Tung SC. The effect of microstructure on the wear Behavior of thermal spray coatings. In: CC Berndt, S Sampath, editors. Thermal spray industrial applications. ASM International, Materials Park, Ohio; 1994. p. 19–24.
  • Volenik K, Novak V, Dubský J, et al. Properties of alloy steel coatings oxidized during plasma spraying. Mater Sci Eng A. 1997;234–236:493–496.
  • Riedel W. Electroless Nickel Plating. Stevenage: Finishing Publications Ltd; 1991.
  • Murtaza Q, Pandey SM, Niranjan MS. Novel manufacturing route for automobile parts through two-wire-Arc thermal spray process. Mater Manuf Processes. 2015. doi:10.1080/10426914.2015.1058945
  • Newbery AP, Grant PS. Large arc voltage fluctuations and droplet formation in electric arc wire spraying. Powder Metall. 2003;46(3):229–235.
  • Ageev VA, Belashchenko VE, Fel'dman IE, et al. Analysis of methods of controlling the parameters of sprayed particles in arc metallising. Weld Int. 1991;5(5):402–405. doi:10.1080/09507119109446761.
  • Korobov YS, Boronenkov VN. Kinetics of interaction of sprayed metal with oxygen in electric arc metallising. Weld Int. 2004;18(1):42–48.
  • SchieflerFilho MFO, Buschinelli AJA, Gärtner F, et al. Influence of process parameters on the quality of thermally sprayed. X46Cr13 stainless steel coatings. J Braz Soc Mech Sci Eng. 2004;1:98–106.
  • Zurecki Z, Garg D, Bowe D. Electric arc deposition of carbon steel coatings with improved mechanical properties. J Therm Spray Technol. 1997;6:417–421.
  • Hackett CM, Settles GS. Research on HVOF gas shrouding for coating oxidation control. In: CC Berndt, S Sampath, editors. Advances in thermal spray science and technology. Materials Park (OH): ASM International; 1995. p. 21–29.
  • Fussell PS. Sprayed metal shells for tooling: phenomenology, microstructures and properties. PhD Thesis, Carnegie-Mellon University, Pittsburgh, PA, USA. 1995; p. 43–51.
  • Wang X, Heberlein J, Pfender E, et al. Effect of nozzle configuration, gas pressure, and gas type on coating properties in wire arc spray. J Term Spray Technol. 1999;8:865–875.
  • ASTM International Designation C633-01 (Reapproved 2008): standard test method for adhesion or cohesion strength of thermal spray coatings. Published September 2008. Originally approved in 1969. doi:10.1520/C633-01R08.
  • Sobolev VV, Guilemany JM. Effect of oxidation on droplet flattening and splat –substrate interaction in thermal spraying. J Therm Spray Technol. 1999;8:523–530.
  • Feng L, Li S, Luo H, et al. Study on the oxidisation behaviour of particles during thermal spray process. Mater Res Innovations. 2015;19(suppl 8): S8-808–S8-812. doi:10.1179/1432891715Z.0000000001807
  • Pfender E. Plasma jet behaviour and modelling associated with the plasma spray process. Thin Solid Films. 1994;238:228–241.
  • Tailor S, Vashishtha N, Modi A, et al. High-performance Al2O3 coating by Hybrid LVOF (Low velocity OxyFuel) process. J Thermal Spray Tech. 2020. doi:10.1007/s11666-020-01033-6. in press
  • Evans AG, Wilshaw TR. Quasi-static solid particle damage in brittle solids-I. Observations Analysis Implications ActaMetall. 1976;24:939–956.
  • Dobler K, Kreye H, Schwetzke R. Oxidation of stainless steel in the high velocity Oxy-Fuel process. J Therm Spray Technol. 2000;9:407–413.
  • Tandon V, Patil AP. On the influence of cold working and electrochemical nitridation on the corrosion behaviour of 316L austenitic stainless steel in acidic environment. Surf Eng Appl Electrochem. 2020;56:63–70.

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