Trends in Machine design Review Article

Improvement in Mechanical Properties Using High Velocity Oxyfuel Coating (HVOF): A Review

  1. Varsha Pathak Department of Mechanical Engineering, Delhi Technological University
  2. Ranganath M.S Department of Mechanical Engineering, Delhi Technological University
  3. R.S. Mishra Department of Mechanical Engineering, Delhi Technological University

Abstract

Surface modification plays a vital role in improving the service life of different machine parts used in number of industries. Due to daily routine operations at difficult environment conditions, most of machine components have failure in their operations. In these types of cases, only materials with superior wear resistance can be used or material surface can be modified by coating. High velocity oxyfuel coatings (HVOF) play a significant role in improving surface properties. Current research focuses on review of tribological properties as well as mechanical properties with application of HVOF coatings. In the last two decades, HVOF coatings have gained huge popularity because of development of thin layer having high hardness, proper adhesion to substrate irrespective of the geometry of the parts and keeping geometry unchanged. The major benefit of HVOF coatings is utilization of vast variety of coating powders on variety of substrates. HVOF coatings have wider applications in automobile industries, aerospace industries, and power plants for improvement of wear resistance. The information in this study is mainly taken from previously published research papers. So, this study is a compilation of data for researchers conducting their study in the area of HVOF coatings.

Keywords

References (22)

  1. Vats A, Patnaik A, Meena ML, Shringi D. Role of micro-factors on microstructure and on the tribological performance of HVOF coatings: A review. IOP Conference Series: Materials Science and Engineering. 2021;1017(1):012010. doi:10.1088/1757-899x/1017/1/012010
  2. Williamson EH, Gee M, Robertson D, Watts JF, Whiting MJ, Yeomans JA. A comparative study of the wear performance of hard coatings for nuclear applications. Wear. 2022;488-489:204124. doi:10.1016/j.wear.2021.204124
  3. Kumar R, Bhandari D, Goyal K. Slurry erosion behaviour of HVOF sprayed coatings on hydro turbine steel: A review. IOP Conference Series: Materials Science and Engineering. 2021;1033(1):012064. doi:10.1088/1757-899x/1033/1/012064
  4. Singh SK, Chattopadhyaya S, Pramanik A, Kumar S, Basak AK, Pandey SM, et al. Tribological Properties of Chromium Nitride on the Cylinder Liner under the Influence of High Temperature. Materials. 2020;13(20):4497. doi:10.3390/ma13204497
  5. Ksiazek M, Nejman I, Boron L. Investigation on Microstructure, Mechanical and Wear Properties of HVOF Sprayed Composite Coatings (WC–Co + CR) On Ductile Cast Iron. Materials. 2021;14(12):3282. doi:10.3390/ma14123282
  6. Brezinová J, Landová M, Guzanová A, Dulebová Ľ, Draganovská D. Microstructure, Wear Behavior and Corrosion Resistance of WC-FeCrAl and WC-WB-Co Coatings. Metals. 2018;8(6):399. doi:10.3390/met8060399
  7. Wei Z, Wu Y, Hong S, Yang W, Shi W. Effects of Temperature on Wear Properties and Mechanisms of HVOF Sprayed CoCrAlYTa-10%Al2O3 Coatings and H13 Steel. Metals. 2019;9(11):1224. doi:10.3390/met9111224
  8. Rukhande SW, Rathod WS, Bhosale DG. Dry sliding wear behaviour of HVOF sprayed NiCrBSiFe coating on SS 316L. Materials Today: Proceedings. 2021;41:765-771. doi:10.1016/j.matpr.2020.08.408
  9. Hong S, Wu Y, Wang B, Lin J. Improvement in Tribological Properties of Cr12MoV Cold Work Die Steel by HVOF Sprayed WC-CoCr Cermet Coatings. Coatings. 2019;9(12):825. doi:10.3390/coatings9120825
  10. Harvey The tough truth-wear-resistant coatings using high velocity oxyfuel. Ind Lubr Tribol. 1996; 48(2): 11–16.
  11. Singh J, Kumar S, Mohapatra SK. Erosion wear performance of Ni-Cr-O and NiCrBSiFe-WC(Co) composite coatings deposited by HVOF technique. Industrial Lubrication and Tribology. 2019;71(4):610-619. doi:10.1108/ilt-04-2018-0149
  12. Singh J, Singh JP. Performance analysis of erosion resistant Mo 2 C reinforced WC-CoCr coating for pump impeller with Taguchi’s method. Industrial Lubrication and Tribology. 2021;74(4):431-441. doi:10.1108/ilt-05-2020-0155
  13. Löbel M, Lindner T, Mehner T, Lampke T. Microstructure and Wear Resistance of AlCoCrFeNiTi High-Entropy Alloy Coatings Produced by HVOF. Coatings. 2017;7(9):144. doi:10.3390/coatings7090144
  14. Navinesh BC, Somasundaram B, Jagadeeswaran, Mamatha MP. Better wear resistance of HVOF coating CrC-NiCrFeSiBCoC(35%–65%) and CrC-NiCrFeSiBCoC(80%–20%)on SS316 steels. Materials Today: Proceedings. 2020;20:155-160. doi:10.1016/j.matpr.2019.10.094
  15. Milanti A, Koivuluoto H, Vuoristo P, Bolelli G, Bozza F, Lusvarghi L. Microstructural Characteristics and Tribological Behavior of HVOF-Sprayed Novel Fe-Based Alloy Coatings. Coatings. 2014;4(1):98-120. doi:10.3390/coatings4010098
  16. Cabral Miramontes J, Pedraza Basulto GK, Gaona Tiburcio C, Zambrano Robledo PDC, Poblano Salas CA, Almeraya Calderón F. Coatings characterization of Ni-based alloy applied by HVOF. Aircraft Engineering and Aerospace Technology. 2018;90(2):336-343. doi:10.1108/aeat-09-2016-0146
  17. Goyal AK, Sapate SG, Mehar S, Vashishtha N, Bagde P, Rathod Tribological properties of HVOF sprayed WC-Cr3C2-Ni coating. Mater Res Express. 2019 Aug; 6(10): 106415. doi:10.1088/2053-1591/ab3946.
  18. Lekatou A, Sioulas D, Karantzalis AE, Grimanelis D. A comparative study on the microstructure and surface property evaluation of coatings produced from nanostructured and conventional WC–Co powders HVOF-sprayed on Al7075. Surface and Coatings Technology. 2015;276:539-556. doi:10.1016/j.surfcoat.2015.06.017
  19. Ishikawa Y, Kuroda S, Kawakita J, Sakamoto Y, Takaya M. Sliding wear properties of HVOF sprayed WC–20%Cr3C2–7%Ni cermet coatings. Surface and Coatings Technology. 2007;201(8):4718-4727. doi:10.1016/j.surfcoat.2006.10.007
  20. Sidhu HS, Sidhu BS, Prakash S. Wear characteristics of Cr3C2–NiCr and WC–Co coatings deposited by LPG fueled HVOF. Tribology International. 2010;43(5-6):887-890. doi:10.1016/j.triboint.2009.12.016
  21. Fedrizzi L, Valentinelli L, Rossi S, Segna S. Tribocorrosion behaviour of HVOF cermet coatings. Corrosion Science. 2007;49(7):2781-2799. doi:10.1016/j.corsci.2007.02.003
  22. Durga Prasad, Joladarashi S, Ramesh MR, Srinath MS, Channabasappa B Comparison of Microstructural and Sliding Wear Resistance of HVOF Coated and Microwave Treated CoMoCrSi-WC + CrC + Ni and CoMoCrSi-WC + 12Co Composite Coatings Deposited on Titanium Substrate. Silicon. 2020; 12: 3027–3045. doi:10.1007/s12633-020-00398-1/Published.
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