177
Views
5
CrossRef citations to date
0
Altmetric
Research Articles

Erosion performance of detonation gun deposited WC–12Co, Stellite 6 and Stellite 21 coatings on SAE213-T12 steel

ORCID Icon &
Pages 229-239 | Received 12 Jun 2018, Accepted 21 Feb 2020, Published online: 07 Jul 2020

References

  • Sundararajan G. The solid particle erosion of metallic materials: the rationalization of the influence of material variables. Wear. 1995;186-187:129–144.
  • Sundararajan G, Roy M. Solid particle erosion behaviour of metallic materials at room and elevated temperatures. Tribol Int. 1997;30(5):339–359.
  • Hidalgo VH, Varela JB, Menendez AC, et al. High temperature erosion wear of flame and plasma-sprayed nickel–chromium coatings under simulated coal-fired boiler atmospheres. Wear. 2001;247:214–222.
  • Kotwal R, Tabakoff W. A new approach for erosion prediction due to fly ash. J Eng Power. 1981;103:265–270.
  • Mishra SB, Prakash S. Erosion-corrosion behaviour Ni-20Cr plasma coating in actual boiler environment. Surf Eng. 2015;31(1):29–38.
  • Das SK, Godiwalla KM, Mehrotra SP, et al. Analytical model for erosion behaviour of impacted fly-ash particles on coal-fired boiler components. Sadhana. 2006;31:583–595.
  • Wichianrat P, Dateraksa K, Sujirote K, et al. Wear behaviour of alumina nozzles by sand blasting. J Metals Mater Miner. 2010;20:15–18.
  • Bahadur S, Badruddin R. Erodent particle characterization and the effect of particle size and shape on erosion. Wear. 1990;138:189–208.
  • Avcu E, Fidan S, Yildiran Y, et al. Solid particle erosion behaviour of Ti6Al4V. Tribol Mater Surf Interfaces. 2013;7(4):201–210.
  • Levy AV, Chik P. The effects of erodent composition and shape on the erosion of steel. Wear. 1983;89:151–162.
  • Mishra SB, Chandra K, Prakash S. Erosion–corrosion behaviour of nickel and iron based superalloys in boiler environment. Oxid Met. 2015;83:101–117.
  • Mishra SB, Chandra K, Prakash S. Studies on erosion-corrosion behaviour of plasma sprayed Ni3Al coating in a coal-fired thermal power plant environment at 540°C. Anti-Corros Methods Mater. 2017;64:540–549.
  • Singh L, Chawla V, Grewal JS. A review on detonation gun sprayed coatings. J Miner Mater Charact Engg. 2012;11(3):243–265.
  • Pawlowski Lech. The Science and Engineering of Thermal Spray Coatings. Second edition. Chichester (West Sussex PO19 8SQEngland: John Wiley & Sons Ltd; 2008. doi:10.1002/9780470754085.
  • Shibe V, Chawla V. Solid particle erosion studies of D-gun sprayed cermet coatings on ASTM A36 steel. Int J Surf Sci Eng. 2018;12(4):317–335.
  • Gao JG, Tang ZH, Wang CL, et al. Microstructure, mechanical and oxidation characteristics of detonation gun and HVOF sprayed MCrAlYX coatings. Trans Nonferrous Met Soc China. 2015;25(3):817–823.
  • Huang CB, Du LZ, Zhang WG. Microstructure, mechanical and tribological characteristics of plasma, detonation gun and HVOF sprayed NiCr/Cr3C2–BaF2. CaF2 coatings. Surf Eng. 2011;27(10):762–769.
  • Malayoglu U, Neville A, Lovelock H. Assessing the kinetics and mechanisms of corrosion of cast and HIPed Stellite 6 in aqueous saline environments. Corros Sci. 2005;47:1911–1931.
  • Sidhu BS, Prakash S. Nickel-chromium plasma spray coatings: a way to enhance degradation resistance of boiler tube steels in boiler environment. J Therm Spray Tech. 2006;15:131–140.
  • Andrews N, Giourntas L, Galloway AM, et al. Effect of impact angle on the slurry erosion-corrosion of Stellite 6 and SS316. Wear. 2014;320:143–151.
  • Roy M. Solid particle erosion behaviour of WC coating obtained by electrospark technique and detonation spraying. Tribol Trans. 2014;57:1028–1036.
  • Wheeler DW, Wood RJK. Erosion of hard surface coatings for use in offshore gate valves. Wear. 2005;258:526–536.
  • Kumar A, Sharma A, Goel SK. Erosion behaviour of WC-10Co-4Cr coating on 23-8-N nitronic steel by HVOF thermal spraying. App Surf Sci. 2016;370:418–426.
  • Antony KC. Wear-resistant cobalt-base alloys. JOM. 1983;35(2):52–60.
  • Wang K, Chang B, Lei Y, et al. Effect of cobalt on microstructure and wear resistance of Ni-based alloy coating fabricated by laser cladding. Metals (Basel). 2017;7(12):551.
  • Ma R, Ju S, Chen H, et al. Effect of cobalt content on microstructures and wear resistance of tungsten carbide–cobalt-cemented carbides fabricated by spark plasma sintering. Proceedings of the 5th Asia conference on mechanical and materials engineering; 2017 Jun 9–11; Tokyo: IOP Publishing; 2017. (IOP Conference Series: Materials Science and Engineering 207).
  • Finnie I. Erosion of surfaces by solid particles. Wear. 1960;3(2):87–103.
  • Arabnejad H, Mansouri A, Shirazi SA, et al. Evaluation of solid particle erosion equations and models for oil and gas industry applications. SPE annual technical conference and exhibition; 2015 Sep 28–30; Houston, TX: Society of Petroleum Engineers; 2015.
  • Hutchings Ian, Shipway Philip. Tribology: Friction and Wear of Engineering Materials. Oxford, United Kingdom: Butterworth-Heinemann: An imprint of Elsevier; 2017.
  • Wellman RG, Nicholls JR. High temperature erosion–oxidation mechanisms, maps and models. Wear. 2004;256(9-10):907–917.
  • Ruff AW, Ives LK. Measurement of solid particle velocity in erosive wear. Wear. 1975;35(1):195–199.
  • Levy AV. Solid particle erosion and erosion-corrosion of materials. Ohio: Asm International; 1995.
  • Mishra SB, Prakash S, Chandra K. Studies on erosion behaviour of plasma sprayed coatings on a Ni-based superalloy. Wear. 2006;260:422–432.
  • ASTM International. Standard test method for conducting erosion tests by solid particle impingement using gas jets. G76-18 . West Conshohocken (PA 19428-2959United States: ASTM International; 2018. doi:10.1520/G0076-18.
  • Afzal M, Ajmal M, Khan AN, et al. Surface modification of air plasma spraying WC-12%Co cermet coating by laser melting technique. Opt Laser Tech. 2014;56:202–206.
  • Couto M, Dosta S, Fernandez J, et al. Comparison of the mechanical and electrochemical properties of WC–25Co coating obtained by high velocity oxy-fuel and cold gas spraying. J Therm Spray Tech. 2014;23(8):1251–1258.
  • Tianyuan S, Dejun K. Microstructures and high-temperature friction-wear performance of laser-remelted WC–12Co coatings by HVOF. Tribol Trans. 2017;60:781–788.
  • Kong G, Zhang D, Brown PD, et al. Microstructural characteristic of high velocity oxyfuel thermally sprayed Stellite 6. Mat. Sci Technol. 2003;19:1003–1011.
  • Bitter JGA. A study of erosion phenomena part I. Wear. 1963;6(1):5–21.
  • Hutchings IM, Winter RE. Particle erosion of ductile metals: a mechanism of material removal. Wear. 1974;27(1):121–128.
  • Levy AV. The platelet mechanism of erosion of ductile metals. Wear. 1986;108(1):1–21.
  • Reyes-Mojena MÁ, Sánchez-Orozco M, Carvajal-Fals H, et al. A comparative study on slurry erosion behavior of HVOF sprayed coatings. Dyna. 2017;84(202):239–246.
  • Praveen AS, Sarangan J, Suresh S, et al. Optimization and erosion wear response of NiCrSiB/WC-Co HVOF coating using Taguchi method. Cer Int. 2016;42:1094–1104.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.