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Research Articles

Erosion behaviour of cobalt-based coatings with different carbide contents under high-speed propellant airflow

ORCID Icon, , , , &
Pages 1210-1218 | Received 19 Oct 2019, Accepted 14 Jan 2020, Published online: 04 Feb 2020

References

  • Ferozhkhan MM, Kumar KG, Ravibharath R. Metallurgical study of stellite 6 cladding on 309-16L stainless steel. Arab J Sci Eng. 2017;42(5):2067–2074. doi: 10.1007/s13369-017-2457-7
  • Pala Z, Bai M, Lukac F, et al. Laser clad and HVOF-sprayed stellite 6 coating in chlorine-rich environment with KCl at 700 degrees C. Oxid Met. 2017;88(5–6):749–771. doi: 10.1007/s11085-017-9776-7
  • Kamal K, Ding YP, Liu R, et al. Corrosion performance of 700 series stellite alloys in various media. J Mater Eng Perform. 2019;28(9):5605–5615. doi: 10.1007/s11665-019-04303-9
  • Vernickaite E, Tsyntsaru N, Cesiulis H. Electrode position and corrosion behaviour of nanostructured cobalt–tungsten alloys coatings. Trans IMF. 2016;94(6):313–321. doi: 10.1080/00202967.2016.1220071
  • Rezgui N, Mickovic D, Zivkovicc S, et al. Experimental and numerical analysis of thermo-chemical erosion in gun steel. Therm Sci. 2018;23(2A):194–194. doi: 10.2298/TSCI180608194R
  • Vigilante GNM, Christopher P. Cylindrical magnetron sputtering (CMS) of coatings for wear life extension in large caliber cannons. Mater Manuf Processes. 2006;21(6):621–627. doi: 10.1080/10426910600609429
  • Butler DJ, Brasher DG. Explosion welding high temperature and wear resistant metal liners into 25 mm gun barrels. Mater Manuf Processes. 2012;27(8):888–891. doi: 10.1080/10426914.2012.667899
  • Łęczycki K. Analysis of premature wear-out of aircraft gun barrel by applying a transmission electron microscopy (TEM). Aviat Adv Maint. 2017;40(1):67–107.
  • Putti AA, Chopade MR, Chaudhari PE. Review on gun barrel erosion. Int J Curr Eng Technol. 2016;4:231–235.
  • Lawton B. The influence of additives on the temperature, heat transfer, wear, fatigue life, and self ignition characteristics of a 155 mm gun. J Press Vessel Technol. 2003;125(3):315–320. doi: 10.1115/1.1593069
  • Miller MD, Campo F, Troiano E, et al. Explosive bonding of refractory metal liners. Mater Manuf Processes. 2012;27(8):882–887. doi: 10.1080/10426914.2011.648699
  • de Rosset WS, Montgomery JS. Cobalt-base alloy gun barrel study. Wear. 2014;316(1–2):119–123. doi: 10.1016/j.wear.2014.05.001
  • Men X, Tao F, Gan L, et al. Erosion behavior and surface cracking mechanism of co-based coating deposited via PTA under high-speed propellant airflow. Surf Coat Technol. 2019;372:369–375. doi: 10.1016/j.surfcoat.2019.05.049
  • Berthod P. Room temperature hardness of carbide strengthened cast alloys in relation with their carbon content and aging temperature part 2 – case of cobalt alloys. Mater Sci Technol. 2009;25(5):663–669. doi: 10.1179/174328408X339251
  • Wang Z, Yan Y, Xing L, et al. The role of hard phase carbides in tribocorrosion processes for a Co-based biomedical alloy. Tribol Int. 2017;113:370–376. doi: 10.1016/j.triboint.2017.01.037
  • Men X, Tao F, Gan L, et al. Erosion behavior of Ni-based coating under high-speed hot airflow. Surf Eng. 2019;35(8):710–718. doi: 10.1080/02670844.2019.1573343
  • Qingyu GJH. The research of the microstructure of the Co-Cr-W alloy plasma surfacing. Rare Met Mater Eng. 2004;33(11):1119–1204.
  • Abdul Munim Alhattab A, Dilawary SAA, Altay M, et al. Effect of electron beam surface melting on the structure and wear characteristics of cobalt-based hardfacing and its Mo-alloyed version. Tribol Trans. 2019;62(5):907–918. doi: 10.1080/10402004.2019.1640328
  • Jeyaprakash N, Yang C-H, Sivasankaran S. Laser cladding process of cobalt and nickel based hard-micron-layers on 316L-stainless-steel-substrate. Mater Manuf Processes. 2019;35(2):1–10.
  • Espevik S, Rapp RA, Daniel PL, et al. Oxidation of ternary Co-Cr-W alloys. Oxid Met. 1983;20(1–2):37–65. doi: 10.1007/BF00658126
  • Motallebzadeh A, Dilawary SAA, Atar E, et al. High-temperature oxidation of stellite 12 hardfacings: effect of Mo on characteristics of oxide scale. J Mater Eng Perform. 2019;28(1):463–474. doi: 10.1007/s11665-018-3796-6

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