Have a personal or library account? Click to login
Study of Selected Properties of Thermally Sprayed Coatings Containing WC and WB Hard Particles Cover

Study of Selected Properties of Thermally Sprayed Coatings Containing WC and WB Hard Particles

Open Access
|Dec 2016

References

  1. 1. Aw P.K., Tan B.H. (2006), Study of microstructure, phase and microhardness distribution of HVOF sprayed multi-modal structured and conventional WC–17Co coatings, Journal of Materials Processing Technology, 174(1-3), 305–311.10.1016/j.jmatprotec.2006.02.006
  2. 2. Berget J., Rogne T., Bardal E. (2007), Erosion–corrosion properties of different WC–Co–Cr coatings deposited by the HVOF process—influence of metallic matrix composition and spray powder size distribution, Surface and Coatings Technology, 201(18), 7619–7625.10.1016/j.surfcoat.2007.02.032
  3. 3. Bolelli G., Börner T., Bozza F., Cannillo V., Cirillo G., Lusvarghi L. (2012), Cermet coatings with Fe-based matrix as alternative to WC–CoCr: Mechanical and tribological behaviours, Surface and Coatings Technology, 206(19-20), 4079–4094.10.1016/j.surfcoat.2012.03.094
  4. 4. Brezinová J., Guzanová A. (2012), Possibilities of utilization high velocity oxygen fuel (HVOF) coatings in conditions of thermal cyclic loading, Metalurgija, 51(2), 211-215.
  5. 5. Brezinová J., Guzanová A., Draganovská D. (2015a), Abrasive blast cleaning and its application, 1st. Ed., Pfaffikon: Trans Tech Publications.
  6. 6. Brezinová J., Guzanová A., Draganovská D., Bronček J. (2015b), Quality evaluation of HVOF coatings on the basis of WC-Co in tribocorrosive conditions, Materials Science Forum, 811, 63-66.10.4028/www.scientific.net/MSF.811.63
  7. 7. Brezinová J., Guzanová A., Draganovská D., Egri M. (2013), Assessment tribological properties of coatings applied by HVOF technology, Acta Mechanica et Automatica, 7(3), 135-139.10.2478/ama-2013-0023
  8. 8. Brezinová J., Guzanová A., Egri M. (2012), Change in properties of HVOF coatings under conditions of thermal cyclic loading, Chemické listy, 106(S3), 383-386.
  9. 9. Brezinová J., Guzanová A., Egri M., Malejčík J. (2011), Evaluation of thermal sprayed coatings properties in terms of erosive wear, Chemické listy: special issue, 105(17), 775-776.
  10. 10. Hong S., Wu Y., Wang Q., Ying G., Li G., Gao W., Wang B., Guo W. (2013a), Microstructure and cavitation–silt erosion behavior of high-velocity oxygen–fuel (HVOF) sprayed Cr3C2–NiCr coating, Surface and Coatings Technology, 225, 85–91.10.1016/j.surfcoat.2013.03.020
  11. 11. Hong S., Wu Y., Zheng Y., Wang B., Gao W., Lin J. (2013b), Microstructure and electrochemical properties of nanostructured WC–10Co–4Cr coating prepared by HVOF spraying, Surface and Coatings Technology, 235, 582–588.10.1016/j.surfcoat.2013.08.029
  12. 12. Hulka I., Uţu D., Şerban V.A. (2011), Micro-scale sliding wear behavior of HVOF sprayed WC-Co(Cr), Annals of Faculty Engineering Hunedoara – International Journal of Engineering, 9(2), 61-64.
  13. 13. Kaur M., Singh H., Prakash S. (2009), High-Temperature Corrosion Studies of HVOF-Sprayed Cr3C2-NiCr Coating on SAE-347H boiler steel, Journal of Thermal Spray Technology, 18(4), 619-632.10.1007/s11666-009-9371-9
  14. 14. Maiti A.K., Mukhopadhyay N., Raman R. (2007), Effect of adding WC powder to the feedstock of WC–Co–Cr based HVOF coating and its impact on erosion and abrasion resistance, Surface and Coatings Technology, 201(18), 7781–7788.10.1016/j.surfcoat.2007.03.014
  15. 15. Saha G.C., Khan T.I., Zhang G.A. (2011), Erosion–corrosion resistance of microcrystalline and near-nanocrystalline WC–17Co high velocity oxy-fuel thermal spray coatings, Corrosion Science, 53(6), 2106–2114.10.1016/j.corsci.2011.02.028
  16. 16. Sahraoui T., Guessasma S., Jeridane M. A., Hadji M. (2010), HVOF sprayed WC–Co coatings: Microstructure, mechanical properties and friction moment prediction, Materials and Design, 31(3), 1431 – 1437.10.1016/j.matdes.2009.08.037
  17. 17. Santana Y.Y., La Barbera-Sosa J.G., Caro J., Puchi-Cabrera E.S., Staia M.H. (2008), Mechanical properties and microstructure of WC–10Co–4Cr and WC–12Co thermal spray coatings deposited by HVOF, Surface Engineering, 24(5), 374-382.10.1179/174329408X326380
  18. 18. Staia M.H., Ramos E., Carrasquero A., Roman A., Lesage J., Chicot D., Mesmacque G. (2000), Effect of substrate roughness induced by gritblasting upon adhesion of WC-17%Co thermal sprayed coatings, Thin Solid Films, 377-378, 657-664.10.1016/S0040-6090(00)01447-4
  19. 19. Wood R.J.K. (2010), Tribology of thermal sprayed WC–Co coatings, International Journal of Refractory Metals and Hard Materials, 28(1), 82–94.10.1016/j.ijrmhm.2009.07.011
  20. 20. Zavareh M.A., Sarhan A.A.D.M., Razak B.B.A., Basirun W.J. (2015), The tribological and electrochemical behavior of HVOF-sprayed Cr3C2–NiCr ceramic coating on carbon steel, Ceramics International, 41(4), 5387–5396.10.1016/j.ceramint.2014.12.102
  21. 21. Žórawski W. (2013), The microstructure and tribological properties of liquid-fuel HVOF sprayed nanostructured WC–12Co coatings, Surface and Coatings Technology, 220, 276-281.10.1016/j.surfcoat.2012.11.007
DOI: https://doi.org/10.1515/ama-2016-0046 | Journal eISSN: 2300-5319 | Journal ISSN: 1898-4088
Language: English
Page range: 296 - 299
Submitted on: Feb 23, 2016
|
Accepted on: Dec 2, 2016
|
Published on: Dec 28, 2016
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2016 Janette Brezinová, Anna Guzanová, Dagmar Draganovská, Pavlo O. Maruschak, Mariana Landová, published by Bialystok University of Technology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.